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intelligence (AI) residency) to advance scientific machine learning for clinical oncology. The project builds a hybrid framework that couples an existing quantitative systems pharmacology (QSP) model of cancer
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scientific conferences and publish models and scientific insights in high-impact journals Who You Are: Ph.D. in Computational Biology, Bioinformatics, Computer Science or Machine Learning related field
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discoveries. Who You Are: Ph.D. with a proven track record of excellence in Computer Science and Machine Learning, with substantial domain experience in biology and genomics. Must have advanced at least one key
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the Sterne-Weiler Lab i n Computational Biology / Discovery Oncology and co-mentored by the Frey Lab in Prescient Design (Machine Learning for Drug Discovery). The postdoctoral position is focused
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-Coding Genome Edits: Develop innovative machine learning approaches for designing precise non-coding genome edits, focusing on how non-coding alterations influence gene regulation and cellular function
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The Position A Postdoctoral fellow position is available for a highly motivated and independent candidate to join our Therapeutic Modalities group at Genentech, under the mentorship of Dr. Claudo
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antigens, T cell receptor (TCR) and antigen interactions and their crucial role in anti-cancer immune responses. You'll leverage your strong background in computational biology, machine learning, and
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to lucidly present complex results, both verbally and in writing, to experts from different fields: computer scientists, computational biologists, biologists, and clinical audiences For more information about
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communication skills, with the ability to present complex data to varied audiences. ● A collaborative mindset and the ability to work effectively in an interdisciplinary team environment. To learn more about the