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contribute to an integrated research program combining advanced molecular biology, single-cell and spatial profiling, and in vivo mouse models to uncover how dynamic cell states drive tumor behavior. Beyond
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optimizes test setups (e.g., tortuosity models, actuation-force fixtures); generates data to guide design. Drives rapid iteration by adapting build techniques, troubleshooting assembly issues, and
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optimizes test setups (e.g., tortuosity models, actuation-force fixtures); generates data to guide design. Drives rapid iteration by adapting build techniques, troubleshooting assembly issues, and
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pre-clinical evaluation. Operates and optimizes test setups (e.g., tortuosity models, actuation-force fixtures); generates data to guide design. Drives rapid iteration by adapting build techniques
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microenvironment (including immune components). Training will engage work with genetically modified mouse models, cell culture, cell biology, and biochemistry techniques. This training opportunity will engage
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electrophysiological and behavioral recordings in models of neural injury/ stroke. Support setup and refinement of new platforms for mouse motor behavior recordings and mouse stroke models. Assist with intracranial
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research, including xenopus, other aquatic animal, or mouse models strongly preferred. Previous training in genomics/genetics preferred. Works independently on research projects designed by a mentor
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data analysis. The ideal candidate is independent, precise, and experienced with animal models and mammalian tissue culture. The individual will work efficiently alone and within a team of faculty
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) years of direct experience in human pathology, including pathology annotation and cohort development, with a strong preference for experience in additional preclinical models. This position plays a
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resistance and bacterial pathogenesis, as well as potential therapeutic targets for these hard-to-treat infections. Experience with bacterial genetics, infection models, and computational biology are desirable