39 electrical-engineering-"https:"-"https:"-"https:"-"https:" research jobs at Duke University
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objectives. Culture myoblast cells in both 2D and 3D systems, including development and maintenance of engineered myobundles. Evaluate muscle function through contractile force measurements following
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the development of new imaging protocols. Minimum Requirements: Ph.D. or equivalent doctorate (e.g. Sc.D., M.D., D.V.M.) in biomedical engineering, electrical or computer engineering, medical physics
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effective in leading discussions about project status and current results in audio and video calls and in-person meetings, and communicating the same in formal and informal written reports. The ideal
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neurologists, neurosurgeons, sleep medicine specialists, engineers, and data scientists, you will have the opportunity to contribute to groundbreaking discoveries while expanding your scientific expertise in a
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to improve their engineering skills while becoming familiar with current healthcare problems. Career development benefits: Duke University is committed to mentoring and supporting young investigators. It
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‑approved radiologic technology or nuclear medicine technology educational program is required. Candidates must hold current certification and registration in one of the following: ARRT Registered Radiologic
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the postdoc will also work closely with Drs. Rick Hoyle and Christopher Bail, as well as other HARP Principal Investigators in the Pratt School of Engineering involved in the first stage of research studies
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, collate processed images and sequence of acquisition and label appropriately. Schedule patients for procedures; assist with clerical functions. Charge MR procedures and supplies in EHR Load and operate
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, and appropriately label and transmit to the Image Archival System. Schedule patients for exams and procedures; assist with clerical functions. Charge exams, procedures, and supplies in the EHR. Dispense
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therapy, with a particular emphasis on epigenetic regulation, radiation response, and treatment resistance. Our work leverages patient-derived organoids, engineered cellular models, functional genomics, and