{"id":1170,"date":"2022-12-19T13:33:34","date_gmt":"2022-12-19T12:33:34","guid":{"rendered":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/?p=1170"},"modified":"2022-12-19T13:33:34","modified_gmt":"2022-12-19T12:33:34","slug":"2023-internship-opportunities-for-masters-students","status":"publish","type":"post","link":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/2023-internship-opportunities-for-masters-students\/","title":{"rendered":"2023 internship opportunities for Master\u2019s students"},"content":{"rendered":"<p>[et_pb_section bb_built=&#8221;1&#8243; next_background_color=&#8221;#000000&#8243; inner_width=&#8221;auto&#8221; inner_max_width=&#8221;none&#8221;][et_pb_row][et_pb_column type=&#8221;3_4&#8243;][et_pb_text admin_label=&#8221;Intro&#8221; _builder_version=&#8221;3.22.1&#8243; module_id=&#8221;intro&#8221; text_text_shadow_horizontal_length=&#8221;text_text_shadow_style,%91object Object%93&#8243; text_text_shadow_vertical_length=&#8221;text_text_shadow_style,%91object Object%93&#8243; text_text_shadow_blur_strength=&#8221;text_text_shadow_style,%91object Object%93&#8243; link_text_shadow_horizontal_length=&#8221;link_text_shadow_style,%91object Object%93&#8243; link_text_shadow_vertical_length=&#8221;link_text_shadow_style,%91object Object%93&#8243; link_text_shadow_blur_strength=&#8221;link_text_shadow_style,%91object Object%93&#8243; ul_text_shadow_horizontal_length=&#8221;ul_text_shadow_style,%91object Object%93&#8243; ul_text_shadow_vertical_length=&#8221;ul_text_shadow_style,%91object Object%93&#8243; ul_text_shadow_blur_strength=&#8221;ul_text_shadow_style,%91object Object%93&#8243; ol_text_shadow_horizontal_length=&#8221;ol_text_shadow_style,%91object Object%93&#8243; ol_text_shadow_vertical_length=&#8221;ol_text_shadow_style,%91object Object%93&#8243; ol_text_shadow_blur_strength=&#8221;ol_text_shadow_style,%91object Object%93&#8243; quote_text_shadow_horizontal_length=&#8221;quote_text_shadow_style,%91object Object%93&#8243; quote_text_shadow_vertical_length=&#8221;quote_text_shadow_style,%91object Object%93&#8243; quote_text_shadow_blur_strength=&#8221;quote_text_shadow_style,%91object Object%93&#8243; header_text_shadow_horizontal_length=&#8221;header_text_shadow_style,%91object Object%93&#8243; header_text_shadow_vertical_length=&#8221;header_text_shadow_style,%91object Object%93&#8243; header_text_shadow_blur_strength=&#8221;header_text_shadow_style,%91object Object%93&#8243; header_2_text_shadow_horizontal_length=&#8221;header_2_text_shadow_style,%91object Object%93&#8243; header_2_text_shadow_vertical_length=&#8221;header_2_text_shadow_style,%91object Object%93&#8243; header_2_text_shadow_blur_strength=&#8221;header_2_text_shadow_style,%91object Object%93&#8243; header_3_text_shadow_horizontal_length=&#8221;header_3_text_shadow_style,%91object Object%93&#8243; header_3_text_shadow_vertical_length=&#8221;header_3_text_shadow_style,%91object Object%93&#8243; header_3_text_shadow_blur_strength=&#8221;header_3_text_shadow_style,%91object Object%93&#8243; header_4_text_shadow_horizontal_length=&#8221;header_4_text_shadow_style,%91object Object%93&#8243; header_4_text_shadow_vertical_length=&#8221;header_4_text_shadow_style,%91object Object%93&#8243; header_4_text_shadow_blur_strength=&#8221;header_4_text_shadow_style,%91object Object%93&#8243; header_5_text_shadow_horizontal_length=&#8221;header_5_text_shadow_style,%91object Object%93&#8243; header_5_text_shadow_vertical_length=&#8221;header_5_text_shadow_style,%91object Object%93&#8243; header_5_text_shadow_blur_strength=&#8221;header_5_text_shadow_style,%91object Object%93&#8243; header_6_text_shadow_horizontal_length=&#8221;header_6_text_shadow_style,%91object Object%93&#8243; header_6_text_shadow_vertical_length=&#8221;header_6_text_shadow_style,%91object Object%93&#8243; header_6_text_shadow_blur_strength=&#8221;header_6_text_shadow_style,%91object Object%93&#8243; z_index_tablet=&#8221;500&#8243;]<\/p>\n<div class=\"page\" title=\"Page 1\">\n<div class=\"layoutArea\">\n<div class=\"column\">Below are listed internship opportunities currently offered by diiP. These offers are open to second year Master\u2019s students.<\/div>\n<\/div>\n<\/div>\n<p>[\/et_pb_text][\/et_pb_column][et_pb_column type=&#8221;1_4&#8243;][\/et_pb_column][\/et_pb_row][et_pb_row _builder_version=&#8221;3.19.11&#8243; module_id=&#8221;image-page-type&#8221; width=&#8221;80%&#8221; max_width=&#8221;1080px&#8221;][et_pb_column type=&#8221;3_4&#8243;][et_pb_image admin_label=&#8221;Image 1920 x 1080&#8243; _builder_version=&#8221;3.22.1&#8243; src=&#8221;https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-content\/uploads\/sites\/27\/2022\/12\/2023-internships.jpg&#8221; module_id=&#8221;image-page&#8221; z_index_tablet=&#8221;500&#8243; \/][\/et_pb_column][et_pb_column type=&#8221;1_4&#8243;][et_pb_text admin_label=&#8221;Texte image&#8221; _builder_version=&#8221;3.22.1&#8243; module_id=&#8221;texte-image&#8221; custom_margin=&#8221;|-15px||&#8221; text_text_shadow_horizontal_length=&#8221;text_text_shadow_style,%91object Object%93&#8243; text_text_shadow_vertical_length=&#8221;text_text_shadow_style,%91object Object%93&#8243; 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\/][\/et_pb_column][\/et_pb_row][et_pb_row][et_pb_column type=&#8221;3_4&#8243;][et_pb_toggle admin_label=&#8221;1&#8243; _builder_version=&#8221;3.22.1&#8243; title=&#8221; Prediction of protein-carbohydrate binding sites using deep learning methods&#8221; text_shadow_horizontal_length=&#8221;text_shadow_style,%91object Object%93&#8243; text_shadow_vertical_length=&#8221;text_shadow_style,%91object Object%93&#8243; text_shadow_blur_strength=&#8221;text_shadow_style,%91object Object%93&#8243; title_text_shadow_horizontal_length=&#8221;title_text_shadow_style,%91object Object%93&#8243; title_text_shadow_vertical_length=&#8221;title_text_shadow_style,%91object Object%93&#8243; title_text_shadow_blur_strength=&#8221;title_text_shadow_style,%91object Object%93&#8243; body_text_shadow_horizontal_length=&#8221;body_text_shadow_style,%91object Object%93&#8243; body_text_shadow_vertical_length=&#8221;body_text_shadow_style,%91object Object%93&#8243; body_text_shadow_blur_strength=&#8221;body_text_shadow_style,%91object Object%93&#8243; z_index_tablet=&#8221;500&#8243;]<\/p>\n<p><em>Supervised by:<\/em> <strong>Tatiana Galochkina<\/strong> (Universit\u00e9 Paris Cit\u00e9)<\/p>\n<p><em>Description:\u00a0<\/em> The Master student will work in the structural bioinformatics group DSIMB (2 Assistant Professors, 2 Associate Professors, 1 Researcher, 1 Research Engineer, 1 PostDoc, 5 PhD students). Our team has extensive expertise in methodological developments for structural bioinformatics problems such as: i) modelling and analysis of protein dynamics; ii) protein structure and dynamics prediction using<br \/>machine learning approaches; iii) development of databases and specific tools for a range of distinct protein families (among others: membrane proteins, camelid antibodies and small disulfide bridge proteins). DSIMB team is internationally recognized for the development of Protein Blocks (PBs), the most widely used structural alphabet in the world applied to analysis and prediction of local protein conformations. DSIMB has also participated in the international CASP 11 and 13 competitions and finished in top 10 for the difficult target category.<br \/>The Master student will work with Dr. Tatiana Galochkina in the framework of the SugarPred project funded by ANR. Dr. Galochkina is a specialist in molecular modelling of complex systems and in deep learning applied to the problem of structural bioinformatics. The student will be co-supervised by Dr. Aria Gheeraert, a PostDoc recruited for the same project.<\/p>\n<p><em>How to apply:\u00a0<\/em>contact tatiana.galochkina[a]wordpress-test.app.u-pariscite.fr<\/p>\n<p><strong>Further information can be found <a href=\"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-content\/uploads\/sites\/27\/2022\/12\/M2-2022-2023-GALOCHKINA-PropStage-english.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">here<\/a><\/strong><\/p>\n<p>[\/et_pb_toggle][et_pb_toggle admin_label=&#8221;2&#8243; _builder_version=&#8221;3.22.1&#8243; title=&#8221;Deep learning to model genetic pleiotropy to understand the human genetic architecture&#8221; text_shadow_horizontal_length=&#8221;text_shadow_style,%91object Object%93&#8243; text_shadow_vertical_length=&#8221;text_shadow_style,%91object Object%93&#8243; text_shadow_blur_strength=&#8221;text_shadow_style,%91object Object%93&#8243; title_text_shadow_horizontal_length=&#8221;title_text_shadow_style,%91object Object%93&#8243; title_text_shadow_vertical_length=&#8221;title_text_shadow_style,%91object Object%93&#8243; title_text_shadow_blur_strength=&#8221;title_text_shadow_style,%91object Object%93&#8243; body_text_shadow_horizontal_length=&#8221;body_text_shadow_style,%91object Object%93&#8243; body_text_shadow_vertical_length=&#8221;body_text_shadow_style,%91object Object%93&#8243; body_text_shadow_blur_strength=&#8221;body_text_shadow_style,%91object Object%93&#8243; z_index_tablet=&#8221;500&#8243;]<\/p>\n<p><em>Supervised by:<\/em> <strong>Marie Verbanck<\/strong>\u00a0(Universit\u00e9 Paris Cit\u00e9)<\/p>\n<p><em>Description:<\/em>The internship will be dedicated to explore semi-supervised and supervised methods to classify the pleiotropy of genetic variants, using labeled pleiotropic data from the methods the team has been developing. In human genetics, and especially to study pleiotropy, the major issue is to obtain labeled data since the ground truth is unknown. However, it has been shown that semisupervised learning strategies have already been applied, with high gain in classification performance (Ratsaby and Venkatesh (1995), Cozman, Cohen, and Cirelo (2003)). Therefore, we have already developed a strategy to partially label genetic variants for pleiotropy using Gaussian Mixture models (Darrous, Mounier, and Kutalik 2021; Morrison et al. 2020). Thus, we will explore this first strategy of developing a semisupervised learning framework in case of Gaussian Mixture models. A second approach will explore supervised learning, namely Convolutional Neural Networks (CNN) that are commonly applied to analyze images. In CNN architecture, the receptive fields overlap with each other and do convolutions between the kernel and the data: this is analogous to the sliding window approach, a traditional method in genetics, with genomic intervals \u201csliding\u201d across the genome. Furthemore, the block architecture of CNNs is comparable to LD-blocks (dependence structure between alleles), one of the major obstacle of mapping pleiotropy. The frameworks Keras and\/or Tensorflow (reachable through R and Python) make powerful deep learning tools available, and will be mainly used to develop the framework.<\/p>\n<p><em>Candidate requirements:\u00a0<\/em><\/p>\n<ul>\n<li>will have a master of data science linked to statistics or artificial intelligence, candidates with more theoretical background however showing strong interest in life science applications are also welcome;<\/li>\n<li>will be enthusiastic about transdisciplinary research and open science at the interface between data science and genetics;<\/li>\n<li>will show a clear interest to use applied science methodology to benefit biological understanding;<\/li>\n<li>will have good programming skills, preferentially R and\/or Python;<\/li>\n<li>can have a background in biology or genetics;<\/li>\n<li>should be open-minded and willing to work as a team with other lab members;<\/li>\n<li>will speak decent English since we are closely collaborating with Mount Sinai Hospital in New York City, USA.<\/li>\n<\/ul>\n<p><em>How to apply: <\/em>to\u00a0apply, please send a concise email describing your research interests and experience as well as an up-to-date CV to\u00a0marie.verbanck[a]wordpress-test.app.u-pariscite.fr<\/p>\n<p><strong>Further information can be found <a href=\"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-content\/uploads\/sites\/27\/2022\/12\/InternPosition_2023_MVerbanck.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">here<\/a><\/strong><\/p>\n<p>[\/et_pb_toggle][et_pb_toggle admin_label=&#8221;3&#8243; _builder_version=&#8221;3.22.1&#8243; title=&#8221;OpenStreetMap and Sentinel-2 data for the automatic production of environmental indices for demographic studies&#8221; text_shadow_horizontal_length=&#8221;text_shadow_style,%91object Object%93&#8243; text_shadow_vertical_length=&#8221;text_shadow_style,%91object Object%93&#8243; text_shadow_blur_strength=&#8221;text_shadow_style,%91object Object%93&#8243; title_text_shadow_horizontal_length=&#8221;title_text_shadow_style,%91object Object%93&#8243; title_text_shadow_vertical_length=&#8221;title_text_shadow_style,%91object Object%93&#8243; title_text_shadow_blur_strength=&#8221;title_text_shadow_style,%91object Object%93&#8243; body_text_shadow_horizontal_length=&#8221;body_text_shadow_style,%91object Object%93&#8243; body_text_shadow_vertical_length=&#8221;body_text_shadow_style,%91object Object%93&#8243; body_text_shadow_blur_strength=&#8221;body_text_shadow_style,%91object Object%93&#8243; z_index_tablet=&#8221;500&#8243;]<\/p>\n<p><em>Supervised by:<\/em> <strong>Sylvain Lobry<\/strong> (Universit\u00e9 Paris Cit\u00e9)<\/p>\n<p><em>Description: <\/em>The work to be conducted during the proposed M2 internship will lead to the following three contributions: \u2022 Contribution A: Development of a model to classify LCZs using high quality OSM data. This rule-based model will allow to better understand the LCZ classification scheme. Furthermore, it will provide a baseline to the multi-modal methods to be developed during the internship. \u2022 Contribution B: Multi-modal models for LCZ classification Using an already trained deep-learning based method to classify LCZs, we will study different fusion mechanisms (including late fusion, rule based fusion) to integrate the information from the rule-based model. Furthermore, we will develop an end-to-end deep learning based model taking rasterized OSM and Sentinel-2 data as an input. These methods will be compared and evaluated in Ouagadougou, Burkina Faso and Antananarivo, Madagascar. \u2022 Contribution C: Link with demographic studies and writing of the master thesis The obtained results will be linked to demographic data in the two previously mentioned regions to better understand the underlying geo-spatial components in population studies. These results will be compared with a baseline developed during the PhD of Basile Rousse.<\/p>\n<p><em>Candidate requirements:\u00a0 <\/em>We are looking for a student in Master 2 or final year of MSc, or engineering school in computer science. The ideal candidate would have knowledge in image processing, computer vision, machine learning, geo-information sciences and Python programming and an interest in handling large amount of data, remote sensing and demography. An experience in statistical data analysis would be a plus.<\/p>\n<p><em>How to apply: p<\/em>lease send a cover letter and a CV to stage-diip[a]listes.ined.fr. You will receive a confirmation by email. The position is open until filled.<\/p>\n<p><strong>Further information can be found <a href=\"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-content\/uploads\/sites\/27\/2022\/12\/stage_M2_LIPADE_INED_DiiP_2.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">here<\/a><\/strong><\/p>\n<p>[\/et_pb_toggle][et_pb_toggle admin_label=&#8221;4&#8243; _builder_version=&#8221;3.22.1&#8243; title=&#8221;Enhancing earthquake location with domain adaptation&#8221; text_shadow_horizontal_length=&#8221;text_shadow_style,%91object Object%93&#8243; text_shadow_vertical_length=&#8221;text_shadow_style,%91object Object%93&#8243; text_shadow_blur_strength=&#8221;text_shadow_style,%91object Object%93&#8243; title_text_shadow_horizontal_length=&#8221;title_text_shadow_style,%91object Object%93&#8243; title_text_shadow_vertical_length=&#8221;title_text_shadow_style,%91object Object%93&#8243; title_text_shadow_blur_strength=&#8221;title_text_shadow_style,%91object Object%93&#8243; body_text_shadow_horizontal_length=&#8221;body_text_shadow_style,%91object Object%93&#8243; body_text_shadow_vertical_length=&#8221;body_text_shadow_style,%91object Object%93&#8243; body_text_shadow_blur_strength=&#8221;body_text_shadow_style,%91object Object%93&#8243; z_index_tablet=&#8221;500&#8243;]<\/p>\n<p><em>Supervised by:<\/em> <strong>L\u00e9onard Seydoux (<\/strong>Universit\u00e9 Paris Cit\u00e9)<\/p>\n<p><em>Description:<\/em>This work aims to correct the systematically biased hypocenters obtained with a permanent seismic array from the hypocenters inferred with a temporary array with an adequate geometry, as illustrated in the figure below. We consider the case of Mayotte to develop the method and show the potential outcomes on other datasets of interest. We will learn the catalog bias from the events detected with the trusted array over five weeks and test the prediction quality over one week. Once successful, we will deploy the technique over several years of continuous data at Mayotte and other contexts.<\/p>\n<p><em>Candidate requirements: <\/em>We seek candidates with a strong taste for programming, seismology, and inverse problemsolving. A motivated candidate for learning about and applying artificial intelligence techniques is strongly preferred. The target programming language is Python, although we are open to other suggestions. We will also use the scikit-learn library or the PyTorch framework to develop the strategy.<\/p>\n<p><em>How to apply: p<\/em>lease send a cover letter and a CV to seydoux[a]ipgp.fr<\/p>\n<p><strong>Further information can be found <a href=\"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-content\/uploads\/sites\/27\/2022\/12\/Stage-diiP-2023.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">here<\/a><\/strong><\/p>\n<p>[\/et_pb_toggle][\/et_pb_column][et_pb_column type=&#8221;1_4&#8243;][\/et_pb_column][\/et_pb_row][\/et_pb_section][et_pb_section bb_built=&#8221;1&#8243; specialty=&#8221;off&#8221; _builder_version=&#8221;3.22.1&#8243; custom_padding=&#8221;0px||0px|&#8221; prev_background_color=&#8221;#000000&#8243; inner_width=&#8221;auto&#8221; inner_max_width=&#8221;none&#8221;][et_pb_row _builder_version=&#8221;3.19.11&#8243; width=&#8221;80%&#8221; max_width=&#8221;1080px&#8221;][et_pb_column type=&#8221;4_4&#8243;][et_pb_text admin_label=&#8221;\u00c0 lire aussi&#8221; _builder_version=&#8221;3.21&#8243;]<\/p>\n<h2><span class=\"st\">\u00c0<\/span> lire aussi<\/h2>\n<p>[\/et_pb_text][et_pb_blog _builder_version=&#8221;3.21&#8243; posts_number=&#8221;4&#8243; include_categories=&#8221;13&#8243; show_author=&#8221;off&#8221; show_date=&#8221;off&#8221; show_pagination=&#8221;off&#8221; border_width_bottom_fullwidth=&#8221;1px&#8221; border_color_bottom_fullwidth=&#8221;rgba(51,51,51,0.18)&#8221; custom_padding=&#8221;||50px|&#8221; module_id=&#8221;page_type_blog&#8221; header_level=&#8221;h4&#8243; \/][\/et_pb_column][\/et_pb_row][\/et_pb_section]<\/p>\n","protected":false},"excerpt":{"rendered":"<div class=\"et_pb_row et_pb_row_0 et_pb_row_empty\"><\/div>\n<p> Below are listed internship opportunities currently offered by diiP. These offers are open to second year Master\u2019s students. <\/p>\n<div class=\"et_pb_row et_pb_row_1 et_pb_row_empty\"><\/div>\n<div class=\"et_pb_row et_pb_row_2 et_pb_row_empty\"><\/div>\n<p> Supervised by: Tatiana Galochkina (Universit\u00e9 Paris Cit\u00e9) Description:\u00a0 The Master student will work in the structural bioinformatics group DSIMB (2 Assistant Professors, 2 Associate Professors, 1 Researcher, 1 Research Engineer, 1 PostDoc, 5 PhD students).&hellip; <a class=\"continue\" href=\"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/2023-internship-opportunities-for-masters-students\/\">Lire la suite<span> 2023 internship opportunities for Master\u2019s students<\/span><\/a><\/p>\n","protected":false},"author":360,"featured_media":1182,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"_et_pb_use_builder":"on","_et_pb_old_content":"<p>[et_pb_section bb_built=\"1\" next_background_color=\"#000000\" inner_width=\"auto\" inner_max_width=\"none\"][et_pb_row][et_pb_column type=\"3_4\"][et_pb_text admin_label=\"Intro\" _builder_version=\"3.22.1\" module_id=\"intro\" text_text_shadow_horizontal_length=\"text_text_shadow_style,%91object Object%93\" text_text_shadow_vertical_length=\"text_text_shadow_style,%91object Object%93\" text_text_shadow_blur_strength=\"text_text_shadow_style,%91object Object%93\" link_text_shadow_horizontal_length=\"link_text_shadow_style,%91object Object%93\" link_text_shadow_vertical_length=\"link_text_shadow_style,%91object Object%93\" link_text_shadow_blur_strength=\"link_text_shadow_style,%91object Object%93\" ul_text_shadow_horizontal_length=\"ul_text_shadow_style,%91object Object%93\" ul_text_shadow_vertical_length=\"ul_text_shadow_style,%91object Object%93\" ul_text_shadow_blur_strength=\"ul_text_shadow_style,%91object Object%93\" ol_text_shadow_horizontal_length=\"ol_text_shadow_style,%91object Object%93\" ol_text_shadow_vertical_length=\"ol_text_shadow_style,%91object Object%93\" ol_text_shadow_blur_strength=\"ol_text_shadow_style,%91object Object%93\" quote_text_shadow_horizontal_length=\"quote_text_shadow_style,%91object Object%93\" quote_text_shadow_vertical_length=\"quote_text_shadow_style,%91object Object%93\" quote_text_shadow_blur_strength=\"quote_text_shadow_style,%91object Object%93\" header_text_shadow_horizontal_length=\"header_text_shadow_style,%91object Object%93\" header_text_shadow_vertical_length=\"header_text_shadow_style,%91object Object%93\" header_text_shadow_blur_strength=\"header_text_shadow_style,%91object Object%93\" header_2_text_shadow_horizontal_length=\"header_2_text_shadow_style,%91object Object%93\" header_2_text_shadow_vertical_length=\"header_2_text_shadow_style,%91object Object%93\" header_2_text_shadow_blur_strength=\"header_2_text_shadow_style,%91object Object%93\" header_3_text_shadow_horizontal_length=\"header_3_text_shadow_style,%91object Object%93\" header_3_text_shadow_vertical_length=\"header_3_text_shadow_style,%91object Object%93\" header_3_text_shadow_blur_strength=\"header_3_text_shadow_style,%91object Object%93\" header_4_text_shadow_horizontal_length=\"header_4_text_shadow_style,%91object Object%93\" header_4_text_shadow_vertical_length=\"header_4_text_shadow_style,%91object Object%93\" header_4_text_shadow_blur_strength=\"header_4_text_shadow_style,%91object Object%93\" header_5_text_shadow_horizontal_length=\"header_5_text_shadow_style,%91object Object%93\" header_5_text_shadow_vertical_length=\"header_5_text_shadow_style,%91object Object%93\" header_5_text_shadow_blur_strength=\"header_5_text_shadow_style,%91object Object%93\" header_6_text_shadow_horizontal_length=\"header_6_text_shadow_style,%91object Object%93\" header_6_text_shadow_vertical_length=\"header_6_text_shadow_style,%91object Object%93\" header_6_text_shadow_blur_strength=\"header_6_text_shadow_style,%91object Object%93\" z_index_tablet=\"500\"]<\/p><div class=\"page\" title=\"Page 1\"><div class=\"layoutArea\"><div class=\"column\"><p>Below are listed internship opportunities currently offered by diiP. These offers are open to second year Master\u2019s students.<\/p><\/div><\/div><\/div><p>[\/et_pb_text][\/et_pb_column][et_pb_column type=\"1_4\"][\/et_pb_column][\/et_pb_row][et_pb_row _builder_version=\"3.19.11\" module_id=\"image-page-type\" width=\"80%\" max_width=\"1080px\"][et_pb_column type=\"3_4\"][et_pb_image admin_label=\"Image 1920 x 1080\" _builder_version=\"3.22.1\" src=\"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-content\/uploads\/sites\/27\/2021\/11\/headway-5QgIuuBxKwM-unsplash-1.jpg\" module_id=\"image-page\" z_index_tablet=\"500\" \/][\/et_pb_column][et_pb_column type=\"1_4\"][et_pb_text admin_label=\"Texte image\" _builder_version=\"3.22.1\" module_id=\"texte-image\" custom_margin=\"|-15px||\" text_text_shadow_horizontal_length=\"text_text_shadow_style,%91object Object%93\" text_text_shadow_vertical_length=\"text_text_shadow_style,%91object Object%93\" text_text_shadow_blur_strength=\"text_text_shadow_style,%91object Object%93\" 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quote_text_shadow_blur_strength=\"quote_text_shadow_style,%91object Object%93\" header_text_shadow_horizontal_length=\"header_text_shadow_style,%91object Object%93\" header_text_shadow_vertical_length=\"header_text_shadow_style,%91object Object%93\" header_text_shadow_blur_strength=\"header_text_shadow_style,%91object Object%93\" header_2_text_shadow_horizontal_length=\"header_2_text_shadow_style,%91object Object%93\" header_2_text_shadow_vertical_length=\"header_2_text_shadow_style,%91object Object%93\" header_2_text_shadow_blur_strength=\"header_2_text_shadow_style,%91object Object%93\" header_3_text_shadow_horizontal_length=\"header_3_text_shadow_style,%91object Object%93\" header_3_text_shadow_vertical_length=\"header_3_text_shadow_style,%91object Object%93\" header_3_text_shadow_blur_strength=\"header_3_text_shadow_style,%91object Object%93\" header_4_text_shadow_horizontal_length=\"header_4_text_shadow_style,%91object Object%93\" header_4_text_shadow_vertical_length=\"header_4_text_shadow_style,%91object Object%93\" header_4_text_shadow_blur_strength=\"header_4_text_shadow_style,%91object Object%93\" header_5_text_shadow_horizontal_length=\"header_5_text_shadow_style,%91object Object%93\" header_5_text_shadow_vertical_length=\"header_5_text_shadow_style,%91object Object%93\" header_5_text_shadow_blur_strength=\"header_5_text_shadow_style,%91object Object%93\" header_6_text_shadow_horizontal_length=\"header_6_text_shadow_style,%91object Object%93\" header_6_text_shadow_vertical_length=\"header_6_text_shadow_style,%91object Object%93\" header_6_text_shadow_blur_strength=\"header_6_text_shadow_style,%91object Object%93\" z_index_tablet=\"500\" \/][\/et_pb_column][\/et_pb_row][et_pb_row][et_pb_column type=\"3_4\"][et_pb_toggle admin_label=\"1\" _builder_version=\"3.22.1\" title=\"Optimizing a physical RNA force-field via Machine Learning\" text_shadow_horizontal_length=\"text_shadow_style,%91object Object%93\" text_shadow_vertical_length=\"text_shadow_style,%91object Object%93\" text_shadow_blur_strength=\"text_shadow_style,%91object Object%93\" title_text_shadow_horizontal_length=\"title_text_shadow_style,%91object Object%93\" title_text_shadow_vertical_length=\"title_text_shadow_style,%91object Object%93\" title_text_shadow_blur_strength=\"title_text_shadow_style,%91object Object%93\" body_text_shadow_horizontal_length=\"body_text_shadow_style,%91object Object%93\" body_text_shadow_vertical_length=\"body_text_shadow_style,%91object Object%93\" body_text_shadow_blur_strength=\"body_text_shadow_style,%91object Object%93\" z_index_tablet=\"500\"]<\/p><p><em>Supervised by:<\/em> <strong>Samuela Pasquali<\/strong> (Universit\u00e9 Paris Cit\u00e9)<\/p><p><em>Description:\u00a0<\/em> The main goal of this project is the optimization of our RNA model through ML to obtain a cuttingedge RNA force field to facilitate building functional three-dimensional structures for RNA molecules. We will employ machine learning to optimize the model exploiting extensively the structural data available in databanks and the sparse thermodynamic and dynamic data available from experiments. This approach will allow our model to give much more accurate and reliable structural predictions and to be deployed on systems of more complex architectures than currently possible. Our aim here is to anchor our force field model deep into the corresponding physics by adapting recent and promising Symbolic Regression algorithms to our data format and selecting the possible improvements in the functional form of the force field uncovered by this technique, based on sound physical principles.<br \/>The M2 internship will be the first step of a larger project where we propose to first use the existing functional form of the force field and train its 100+ coefficients and then to then build upon the ML pipeline developed in the first step to learn additional terms of the force field. The first step will serve two purposes: i) improving the existing, physics-based force field and ii) establish an accuracy baseline for further improvement.<\/p><p>The work will be divided in 4 phases:<br \/>1. Set up the global optimization scheme coupling Pytorch to the coarse-grained force-field code.<br \/>2. Generate an appropriate training set of RNA structures.<br \/>3. Run the optimization on the training set.<br \/>4. Run the optimized force-fields on a set of benchmark systems.<\/p><p><em>How to apply:<\/em> please send a motivation letter and a CV to samuela.pasquali[at]wordpress-test.app.u-pariscite.fr<\/p><p><strong>Further information can be found <a href=\"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-content\/uploads\/sites\/27\/2021\/12\/M2internship_ML_RNA.pdf\" target=\"_blank\" rel=\"noopener noreferrer\">here<\/a><\/strong><\/p><p>[\/et_pb_toggle][\/et_pb_column][et_pb_column type=\"1_4\"][\/et_pb_column][\/et_pb_row][\/et_pb_section][et_pb_section bb_built=\"1\" specialty=\"off\" _builder_version=\"3.22.1\" custom_padding=\"0px||0px|\" prev_background_color=\"#000000\" inner_width=\"auto\" inner_max_width=\"none\"][et_pb_row _builder_version=\"3.19.11\" width=\"80%\" max_width=\"1080px\"][et_pb_column type=\"4_4\"][et_pb_text admin_label=\"\u00c0 lire aussi\" _builder_version=\"3.21\"]<\/p><h2><span class=\"st\">\u00c0<\/span> lire aussi<\/h2><p>[\/et_pb_text][et_pb_blog _builder_version=\"3.21\" posts_number=\"4\" include_categories=\"13\" show_author=\"off\" show_date=\"off\" show_pagination=\"off\" border_width_bottom_fullwidth=\"1px\" border_color_bottom_fullwidth=\"rgba(51,51,51,0.18)\" custom_padding=\"||50px|\" module_id=\"page_type_blog\" header_level=\"h4\" \/][\/et_pb_column][\/et_pb_row][\/et_pb_section]<\/p>","_et_gb_content_width":"","footnotes":""},"categories":[1,12],"tags":[],"class_list":["post-1170","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-diip","category-news"],"_links":{"self":[{"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/posts\/1170","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/users\/360"}],"replies":[{"embeddable":true,"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/comments?post=1170"}],"version-history":[{"count":4,"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/posts\/1170\/revisions"}],"predecessor-version":[{"id":1183,"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/posts\/1170\/revisions\/1183"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/media\/1182"}],"wp:attachment":[{"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/media?parent=1170"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/categories?post=1170"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/wordpress-test.app.u-pariscite.fr\/diip\/wp-json\/wp\/v2\/tags?post=1170"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}