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Field
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with state-of-the-art computing and artificial intelligence is needed because the algorithms used to simulate and interrogate the dynamics for even one cell type – which can comprise billions
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identification of mechanical parameters using genetic algorithms. The project lies at the interface between applied mechanics, micromechatronics and bioengineering, with potential applications in mechanobiology
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), to work on problems at the intersection of biology, medicine, mathematics and computation. The successful candidate will contribute to the development of next-generation learning algorithms to understand
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networks; using algorithms or computer simulations to study gerrymandering; or the role of information visualization to investigate and communicate complex information. Georgia Tech prides itself on its
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unprecedented power to uncover cell-type-specific and cell-state-specific genetic mechanisms underlying human biology and disease. The Postdoc joining this program will have the opportunity to: Drive high-impact
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interactions, nuclear structure and reactions, electroweak structure, and lepton-nucleus scattering. The candidate will contribute to advancing statistical and computational algorithms to extend the capabilities
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the construction of PRS and enhance disease prediction. Students will gain experience in: Statistical genetics and GWAS methodology Machine learning approaches for high-dimensional data Algorithm development and
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requires expertise in Computer Science, Statistics, or a similar field. Experience with machine learning, genetics, and/or bio-informatics is strongly preferred. The postdoc will work together and within a
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, welcoming place of work with an international reputation for excellence. The Department has a substantial research programme, with major funding from Medical Research Council (MRC), Wellcome Trust and
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, mathematics, statistics, molecular evolution, or biophysics, and wish to work at the Max Planck Institute for Molecular Genetics or Freie Universität Berlin, this doctoral program is your ideal pathway