retrieve:
Return the details about the given Memento id.

list:
List all Memento objects.

GET /api/v1/mementos/9/events/?format=api&ordering=-slug
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            "title": "Lemanic Life Sciences Hackathon 2026",
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            "start_date": "2026-04-16",
            "end_date": "2026-04-18",
            "start_time": "09:00:00",
            "end_time": "21:00:00",
            "description": "<p>Join us for the third edition of the Lemanic Life Sciences Hackathon!<br>\r\n<br>\r\nOrganized by <a href=\"https://www.epfl.ch/schools/sv/\">EPFL School of Life Sciences</a>, <a href=\"https://ai.epfl.ch/\">EPFL AI Center</a> and the <a href=\"https://www.unibe.ch\" rel=\"noopener\" target=\"_blank\">University of Bern</a>, we aim to bring together clinicians, life scientists, and data scientists to test ideas, drive innovation, and tackle real-world challenges in healthcare and research.<br>\r\n<br>\r\nExplore the untapped potential of AI in life sciences and clinical research\r\n</p><ul>\r\n\t<li><strong>Leverage biological data for Impact</strong>: promote the re-use and sharing of valuable existing datasets. </li>\r\n\t<li><strong>Encourage innovative data analysis</strong> on  biological and clinical challenges.</li>\r\n\t<li><strong>Empower the Next Generation</strong> with hands-on data-science skills.</li>\r\n\t<li><strong>Forge interdisciplinary collaborations</strong>: Build partnerships between clinicians, scientists, and data experts to drive change in healthcare and research.</li>\r\n\t<li><strong>Strengthen the regional ecosystem</strong>: through lasting institutional collaborations. laying the groundwork for  innovation and interdisciplinary approaches.</li>\r\n\t<li><strong>Match people with ideas, data, and skills</strong> to spark impactful projects.</li>\r\n</ul>\r\n\r\n<div class=\"container-full\">\r\n<div class=\"container-full px-4 py-3\">\r\n<div class=\"card-deck\"> \r\n<div class=\"card-body\"><strong><a href=\"https://www.epfl.ch/schools/sv/lemanic-life-sciences-hackathon-2026/\">More info, submisstion of projects and registration as a participant on our Website</a>!</strong></div>\r\n</div>\r\n</div>\r\n</div>",
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            "id": 71446,
            "title": "Contributing to community-driven open-source in the age of agentic AI: my scikit-learn experience",
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            "start_date": "2026-04-16",
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            "description": "<strong>The Keynote of the 3rd Lemanic Life Sciences Hackathon is open to the EPFL Community.</strong><br>\r\n<br>\r\nIn this talk, Guillaume will go back in time 10 years ago to my personal contributions to the scikit-learn project. He'll use this experience to make a state of play of how the different advancements in Generative AI and more recently agentic AI are disrupting, for the best and the worst, the way open-source communities are working day after day.<br>\r\n ",
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            "id": 71411,
            "title": "Life Science Seminar: Hitoshi Kurumizaka",
            "slug": "life-science-seminar-hitoshi-kurumizaka",
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            "start_date": "2026-04-20",
            "end_date": "2026-04-20",
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            "description": "<strong>Title:</strong> <br>\r\nStructural molecular biology for the nucleosome as a regulator on genomic DNA<br>\r\n<br>\r\n<strong>Abstract:</strong><br>\r\nIn eukaryotic cells, genomic DNA is highly compacted into chromatin through its association with histone proteins. The fundamental unit of chromatin, the nucleosome, consists of ~147 base pairs of DNA wrapped around a histone octamer composed of H2A, H2B, H3, and H4. These nucleosomes are connected by linker DNA, forming a “beads-on-a-string” structure that enables efficient packaging of the genome.<br>\r\nBeyond structural compaction, nucleosomes play a central role in regulating genome function. They can restrict access to DNA and act as barriers to essential processes such as transcription, replication, and repair. At the same time, nucleosomes serve as key epigenetic platforms, where histone modifications and histone variants modulate chromatin structure and dynamics to control gene activity.<br>\r\nTo better understand these regulatory mechanisms, we employ biochemical and structural approaches to investigate nucleosome structure and dynamics. Our studies aim to elucidate how structural transitions of nucleosomes influence DNA accessibility and ultimately govern genomic regulation. I will present our recent structural and biochemical insights and discuss their implications for understanding nucleosome-mediated genome regulation.<br>\r\n<br>\r\n<strong>Bio:</strong><br>\r\nHitoshi Kurumizaka is a Professor at the Institute for Quantitative Biosciences, The University of Tokyo, Japan. After receiving his Ph.D. degree in 1995, he started his postdoctoral training at NIH in the USA, in the laboratory of Molecular Embryology (Alan Wolffe Lab), where he began chromatin research. In 1997, he joined RIKEN as a Research Scientist. He subsequently moved to Waseda University, where he served as Associate Professor and later as Professor of Molecular and Structural Biology. Since 2018, he has been Professor at the Institute for Quantitative Biosciences, The University of Tokyo. His research focuses on the structural basis of chromatin and epigenetic regulation in eukaryotic genomes. In 2020, he established an in-house cryogenic electron microscopy (cryo-EM) platform to advance high-resolution structural studies of chromatin and genome-associated protein complexes. Professor Kurumizaka has made significant contributions to the field of chromatin biology through structural and mechanistic studies of nucleosomes and genome-associated protein complexes. His work has been published in leading international journals and has substantially advanced our understanding of chromatin architecture and epigenetic regulation.<br>\r\n ",
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            "creation_date": "2026-03-19T22:57:43",
            "last_modification_date": "2026-04-01T14:33:48",
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            "keywords": "Chromatin, Structural Biology, Cryo-EM, DNA, Transcription",
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            "id": 71376,
            "title": "EPFL Latsis Symposium 2026: “Decoding the Cell: Modeling, Predicting, and Engineering Cellular States”",
            "slug": "epfl-latsis-symposium-2026-decoding-the-cell-model",
            "event_url": "https://memento.epfl.ch/event/epfl-latsis-symposium-2026-decoding-the-cell-model",
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            "start_date": "2026-10-29",
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            "description": "<p>The <strong>EPFL Latsis Symposium 2026<em>: “Decoding the Cell: Modeling, Predicting, and Engineering Cellular States”</em></strong> will be held on <strong>October 29-30, 2026</strong>, at the <strong>Olympic Museum in Lausanne</strong>.<br>\r\n<br>\r\nThis international gathering will bring together leading scientists in single-cell analysis, computational modeling, and cellular engineering to explore how recent breakthroughs in multi-omics technologies, predictive algorithms, and synthetic biology are reshaping our understanding of cellular function.<br>\r\n<br>\r\nThrough interdisciplinary talks and discussions, the symposium will spotlight advances in single-cell multi-modal data integration, predictive modeling of cell identity and behavior, and the engineering of synthetic cell states. By connecting researchers across experimental and computational domains, the event aims to establish new conceptual and technological frameworks for modeling and controlling cellular systems.<br>\r\n<br>\r\nHosted by <strong>EPFL</strong>, the symposium will foster scientific exchange, spark new collaborations, and accelerate progress toward next-generation cell-based therapies, disease models, and synthetic biological innovations.<br>\r\n<br>\r\nJoin us in Lausanne to connect with the global community shaping the future of cell understanding and engineering.<br>\r\n<br>\r\n<strong>SPEAKERS:</strong><br>\r\n•    <strong>Gray Camp</strong> – Research Group Leader at the Roche Institute for Translational Bioengineering (ITB) in Basel<br>\r\n•    <strong>Barbara Engelhardt</strong> – Senior Investigator, Gladstone Institutes &amp; Professor, Department of Biomedical Data Science at Stanford University<br>\r\n•    <strong>Jeremy Gunawardena</strong> – Professor, Department of Medicine and Life Sciences (MELIS), Pompeu Fabra University, Barcelona<br>\r\n•    <strong>Muzlifah Haniffa</strong> – Head of the Cellular Genomics Programme and Deputy Director of the Wellcome Sanger Institute and Professor of Clinical Dermatology at the University of Cambridge<br>\r\n•    <strong>Anshul Kundaje</strong> – Associate Professor of Genetics and Computer Science at Stanford University<br>\r\n•    <strong>Prisca Liberali </strong>– Professor at the Department of Biosystems Science and Engineering, ETHZ &amp; Senior Group Leader at the Friedrich Miescher Institute for Biomedical Research<br>\r\n•    <strong>Ewa Paluch</strong> – Professor of Anatomy in the Department of Physiology, Development and Neuroscience and Fellow of Trinity College at the University of Cambridge<br>\r\n•    <strong>Steve Quake</strong> – Professor of Bioengineering and Applied Physics, Stanford University<br>\r\n•    <strong>Sussane Rafelski</strong> – Sr. Director, Quantitative Biology at the Allen Institute for Cell Science<br>\r\n•    <strong>Kevin Tsia</strong> – Professor in the Department of Electrical and Electronic Engineering and the Program Director of the Biomedical Engineering Program at the University of Hong Kong<br>\r\n•    <strong>Bo Wang</strong> – Chief AI Scientist, Vector Institute &amp; Assistant Professor, University of Toronto<br>\r\n<br>\r\nGenerously supported by\r\n</p><div class=\"wp-block-image\"><img alt=\"\" decoding=\"async\" height=\"147\" sizes=\"(max-width: 343px) 100vw, 343px\" src=\"https://www.epfl.ch/labs/deplanckelab/wp-content/uploads/2025/11/Fondation-Latsis-logo.png\" srcset=\"https://www.epfl.ch/labs/deplanckelab/wp-content/uploads/2025/11/Fondation-Latsis-logo.png 343w, https://www.epfl.ch/labs/deplanckelab/wp-content/uploads/2025/11/Fondation-Latsis-logo-300x129.png 300w\" width=\"343\"></div>",
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            "organizer": "LATSIS Symposium 2026 Organizing Committee:<br>\r\nProf. Bart Deplancke, Prof. Maria Brbić and Prof. Giovanni D’Angelo",
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        {
            "id": 71549,
            "title": "Structured Water and Surface Potential at Charged Dielectric Interfaces",
            "slug": "structured-water-and-surface-potential-at-charged",
            "event_url": "https://memento.epfl.ch/event/structured-water-and-surface-potential-at-charged",
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            "start_date": "2026-04-13",
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            "start_time": "10:00:00",
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            "description": "<a href=\"https://bioengineering.epfl.ch/seminars\"><strong>BIOENGINEERING SEMINAR</strong></a><br>\r\n<br>\r\n<u>Abstract:</u><br>\r\nThe interaction of molecules with natural and synthetic aqueous surfaces is a fundamental aspect of environment science, biology, and biomedical engineering. There is increasing evidence that the unique water structure and hydrogen bonding environment within the first nanometer of the surface may be largely responsible for driving those interactions. That microscopic region is also influenced by electrostatic interactions, even though the origin of the surface charge is not always clear. A further complication is that the water structure may be substantially different in the Stern and diffuse regions of the electrical double layer, thereby requiring nanoscale probes. While recent advances in plasmonics-based methods (such SERS, SHINERS or SEIRAS) have pushed the capabilities for detection of nano-structured water at metal surfaces, there are comparatively fewer methods suitable for the investigation of dielectric materials. This presentation will illustrate how our recently-developed angle-scanning nonlinear optical spectroscopy has the ability to offer a unique probe of interfacial water structure.<br>\r\n<br>\r\n<u>Bio:</u><br>\r\nDennis Hore is a Professor in the Departments of Chemistry and Computer Science at the University of Victoria, Canada. He has two research groups: one develops nonlinear optical techniques for studying molecular structure at solid-liquid interfaces - <a contenteditable=\"false\" href=\"https://web.uvic.ca/~dkhore/\" title=\"https://web.uvic.ca/~dkhore/\">https://web.uvic.ca/~dkhore/</a>. The other engages in community-based harm reduction, determining the composition and concentration of illicit drug mixtures for people who use drugs - <a contenteditable=\"false\" href=\"https://substance.uvic.ca/\" title=\"https://substance.uvic.ca/\">https://substance.uvic.ca/</a>.<br>\r\n<br>\r\n ",
            "image_description": "",
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            "speaker": "<strong>Dennis Hore, Ph.D</strong>, Departments of Chemistry and Computer Science, University of Victoria, Canada",
            "organizer": "Sylvie Roke, <a href=\"https://www.epfl.ch/labs/lbp/\">Laboratory for fundamental BioPhotonics (LBP)</a>",
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        {
            "id": 71009,
            "title": "BMI Seminar // Sung Han: Revealing the role of neuropeptides in neural circuit function and behavior",
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            "start_date": "2026-04-13",
            "end_date": "2026-04-13",
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            "description": "<p>Neuropeptides play a critical role in modulating neural circuits and influencing behavior, yet their precise mechanisms of action remain largely unexplored. In this talk, I will present our latest findings on the role of neuropeptides in neural circuit function, uncovered through the use of novel genetically encoded sensors and silencers designed specifically for peptidergic transmission. By applying these innovative tools, we have identified key pathways and mechanisms by which neuropeptides regulate neuronal activity and orchestrate complex behavioral responses. This presentation will highlight the biological insights gained from these studies, offering a deeper understanding of how neuropeptide signaling shapes brain function and behavior.<br>\r\n </p>",
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            "speaker": "Sung Han, Salk Institute for Biological Studies",
            "organizer": "<strong>BMI LSYM</strong> <strong>Host:  Ralf Schneggenburger</strong>",
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        {
            "id": 71140,
            "title": "FameLab Switzerland 2026 competition",
            "slug": "famelab-switzerland-2026-competition",
            "event_url": "https://memento.epfl.ch/event/famelab-switzerland-2026-competition",
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            "description": "<figure class=\"image\"><img alt=\"\" height=\"337\" src=\"//memento.epfl.ch/public/upload/fckeditorimage/c2/f6/c5e48d79.jpg\" width=\"600\">\r\n<figcaption>© 2026 EPFL</figcaption>\r\n</figure>\r\n<br>\r\n<strong>Calling all passionate science storytellers!</strong><br>\r\n<br>\r\nThe internationally acclaimed science communication competition <a href=\"chatgpt://generic-entity?number=0\"><strong>FameLab</strong></a> is coming to <a href=\"chatgpt://generic-entity?number=1\"><strong>Switzerland</strong></a> — and this is your opportunity to shine.<br>\r\n<br>\r\nFameLab invites scientists, researchers, and innovators to step into the spotlight and present a scientific concept of their choice in just <strong>three minutes</strong>. The challenge? Make it clear, captivating, and unforgettable for a general audience. No slides. No props. Just your voice, your passion, and your story.<br>\r\n<br>\r\n<strong>Why Participate?</strong>\r\n\r\n<ul>\r\n\t<li>Compete in the Swiss heats and connect with a dynamic community of science communicators</li>\r\n\t<li>Gain visibility and sharpen your public speaking skills</li>\r\n\t<li>Advance to the national final for a chance to become Switzerland’s FameLab champion</li>\r\n</ul>\r\n<br>\r\n<strong> The Grand Prize</strong><br>\r\n<br>\r\nThe Swiss winner will receive:\r\n<ul>\r\n\t<li>An exclusive ticket to the renowned <a href=\"chatgpt://generic-entity?number=2\"><strong>Cheltenham Science Festival</strong></a> in the <a href=\"chatgpt://generic-entity?number=3\"><strong>United Kingdom</strong></a></li>\r\n\t<li>Flights and accommodation fully covered</li>\r\n\t<li>Access to a high-level Masterclass in Science Communication</li>\r\n</ul>\r\n<br>\r\n<br>\r\nWhether you’re working in physics, biology, engineering, social sciences, or any other field — if you love science and want to share it with the world, this is your stage.<br>\r\n<br>\r\n<strong>Apply now:</strong> https://www.famelab.ch/apply<br>\r\nStep forward. Speak up. Spark curiosity.<br>\r\n<br>\r\nWe look forward to welcoming you on stage!<br>\r\n<br>\r\n<strong>The FameLab BSNL Team</strong>",
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            "link_label": "Register Now",
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        {
            "id": 71389,
            "title": "Call for projects CROSS 2027",
            "slug": "call-for-projects-cross-2027",
            "event_url": "https://memento.epfl.ch/event/call-for-projects-cross-2027",
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            "lang": "en",
            "start_date": "2026-03-18",
            "end_date": "2026-06-15",
            "start_time": "00:00:00",
            "end_time": "23:59:00",
            "description": "<p>The 2027 edition of the CROSS program calls upon researchers at <strong>EPFL and the University of Lausanne to submit proposals for joint projects</strong> that bring the natural sciences and engineering together with the social sciences and humanities.<br>\r\n<br>\r\nThrough this annual call for projects, CROSS provides competitive grants to support new seed research endeavors that have the potential to grow into full–scale interdisciplinary research projects.<br>\r\n<br>\r\n<em><strong>The 2024 CROSS call is open to all topics.</strong></em><br>\r\n<br>\r\n<strong><em>—————————————————————————————</em></strong><br>\r\n<br>\r\n<strong>PROPOSALS:</strong><br>\r\n<br>\r\nProposals must come from joint UNIL-EPFL teams, which bring together specialists in the human and social sciences on the one hand, with specialists from life sciences, natural sciences or engineering on the other. Up to six projects will be selected, with a maximum of CHF 60,000 awarded per project.\r\n</p><ul>\r\n\t<li><strong>Deadline for submission: Monday, June 15, 2026</strong></li>\r\n\t<li>Selected projects will be notified no later than September 30, 2026</li>\r\n\t<li>Project start date: January 1, 2027</li>\r\n\t<li>Project completion: by December 31, 2027</li>\r\n</ul>\r\nApplication and guidelines:\r\n\r\n<ul>\r\n\t<li><a href=\"https://www.epfl.ch/schools/cdh/wp-content/uploads/2026/03/CROSS-2027-Application.pdf\">Application form</a></li>\r\n\t<li><a href=\"https://www.epfl.ch/schools/cdh/wp-content/uploads/2026/03/CROSS-2027-Guidelines.pdf\">Guidelines</a></li>\r\n\t<li><a href=\"https://www.epfl.ch/schools/cdh/wp-content/uploads/2026/03/CROSS-2027-Ethics-self-assessment.pdf\">Ethics self-assessment</a></li>\r\n</ul>\r\n<strong>Further information: </strong><a href=\"mailto:[email protected]\"><strong>[email protected]</strong></a>",
            "image_description": "",
            "creation_date": "2026-03-17T10:28:32",
            "last_modification_date": "2026-03-18T08:31:50",
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                "en_label": "Registration required"
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            "keywords": "EPFL, UNIL",
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            "category": {
                "id": 16,
                "code": "PROP",
                "fr_label": "Appel à proposition",
                "en_label": "Call for proposal",
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        {
            "id": 71558,
            "title": "Tailoring catalysts for reactions involving multifunctional molecules using machine learning",
            "slug": "tailoring-catalysts-for-reactions-involving-multif",
            "event_url": "https://memento.epfl.ch/event/tailoring-catalysts-for-reactions-involving-multif",
            "visual_url": null,
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            "lang": "en",
            "start_date": "2026-04-14",
            "end_date": "2026-04-14",
            "start_time": "15:15:00",
            "end_time": "16:15:00",
            "description": "<strong>Abstract</strong><br>\r\nFirst principles methods and more recently machine learning, have opened new avenues to systematize catalyst design. Yet, computational efforts of the last 2+ decades have primarily focused on reactions involving small molecules (C<sub>1-2</sub>, O<sub>1</sub>, N<sub>1</sub>) that are activated by high-symmetry sites of extended surfaces at low surface coverages. In contrast, most industrial processes involve large multi-functional molecules (e.g., cyclic hydrocarbons, nitroarenes etc.) that are activated by low-symmetry sites of nanoclusters under high surface coverages. Machine learning methods have emerged as a powerful approach to bridge this gap between first principles models and reality. Using physics-inspired machine learning trained on small datasets by active learning, we identify next-generation bimetallic Pt catalysts for dehydrogenating liquid organic hydrogen carriers like methylcyclohexane. Using machine learned potentials, we rationalize why functionalized nitroarenes adsorb in self-assembled monolayer-like arrangements on Pd catalysts, consistent with <em>in situ</em> surface characterization. We distil our learnings into a forward-looking viewpoint of the do’s and don’ts in using machine learned potentials to predict the surface structure and reactivity of multi-functional molecules.<br>\r\n<br>\r\n<strong>Biography</strong><br>\r\nTej has been a tenure-track Assistant Professor at Nanyang Technological University, Singapore since Dec. 2019. He obtained his PhD in chemical engineering from Purdue University in Dec. 2017 (advisor: Prof. Jeffrey Greeley) and thereafter completed his postdoctoral training at Stanford University (advisor: Dr. Frank Abild-Pedersen). His group employs first principles methods and kinetic modelling to understand how catalysts operate at the atomic scale. In addition to managing his research programme, Tej is a Faculty Fellow of the NTU Honors College and the Director of the undergraduate programme in chemical and biomolecular engineering. Tej has received the Outstanding Young Principal Investigator of the AIChE, Singapore Local Section (2022) and the Nanyang Education Award (2022) for excellence in teaching. Tej holds early career advisory board roles in the Journal of Catalysis, ChemSusChem, and Applied Catalysis A: General.<br>\r\n ",
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            "speaker": "Assistant Professor Tej Choksi",
            "organizer": "Philippe Schwaller",
            "contact": "Sarina Kopf",
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            "keywords": "MLSeminar1",
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        },
        {
            "id": 69379,
            "title": "Clinical Research & Product Development in Pharma and Biotech [CAS Management in Life Sciences 2026]",
            "slug": "clinical-research-product-development-in-pharma-an",
            "event_url": "https://memento.epfl.ch/event/clinical-research-product-development-in-pharma-an",
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            "start_date": "2026-04-14",
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            "description": "<strong>Module 4:  Clinical Research &amp; Product Development in Pharma and Biotech</strong><br>\r\nOur Clinical Trial module addresses how to manage clinical trials within the appropriate legislative frameworks. We review the regulations that govern medical devices &amp; therapeutics, and cover good practices in managing clinical trials.<br>\r\n<br>\r\n*************<br>\r\n<br>\r\n<strong><u>About the CAS Managament in Life Sciences:</u><br>\r\nLeading multi-disciplinary projects in BioTech, MedTech and Pharma</strong><br>\r\n<br>\r\nThe world of therapeutic development is becoming increasingly complex. Competition is diversifying and innovating across industries, just as new regulations and multi-stakeholder engagements disrupt the competitive landscape. Challenge or opportunity? It is up to you!<br>\r\n<br>\r\nThis program explores the entire development process of therapeutic interventions, from initial planning all the way to commercialization, allowing our participants to deepen their expertise. They also learn the leadership qualities and management tools required to lead multi-disciplinary projects in Biotech, Medtech and Pharma ventures.<br>\r\n<br>\r\nThis Certificate of Advanced Studies (CAS) runs every year, from January to June at the EPFL Campus in Lausanne.\r\n<ul>\r\n\t<li>7 modules</li>\r\n\t<li>Flexible format</li>\r\n\t<li>Part-time</li>\r\n</ul>",
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