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Elevate Clinical Research, Inc. in Houston, TX invites applications for a Research Assistant to support data-driven healthcare studies and experimental protocols.
The role involves collecting, processing, and analyzing complex datasets to inform clinical practices and health policy decisions, collaborating with interdisciplinary teams to design and implement methodologies including computational and laboratory techniques.
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Full Time Houston, TX, US
2 days ago Requisition ID: 1029
Elevate Clinical Research is a mission‑driven organization expanding access to high‑quality clinical trials across Texas, Louisiana, Illinois, Maryland, South Dakota, Hawaii, Kansas, and growing. We exist to bring research closer to the communities that need it most, delivering compassionate patient care, operational excellence, and trustworthy data that advances medicine.
At Elevate, your work has real impact. Every role contributes directly to improving health outcomes and bringing new therapies to life. We hire people who care deeply about patients, believe in doing things the right way, and want to grow with a company that’s expanding nationwide.
Join Elevate and help build a patient‑centered research network that’s changing what clinical trials can look like for communities across the country.
The Research Assistant will play a critical role in advancing healthcare and social assistance research by supporting data-driven studies and experimental protocols. This position involves collecting, processing, and analyzing complex datasets to uncover insights that can inform clinical practices and health policies. The successful candidate will collaborate closely with interdisciplinary teams to design and implement research methodologies, including both computational and laboratory techniques. They will contribute to the development and validation of machine learning models, particularly deep learning and neural networks, to interpret biomedical data. Ultimately, this role aims to facilitate impactful research outcomes that improve patient care and public health understanding.
The required skills such as data collection and field research are essential for gathering high-quality, relevant data that forms the foundation of all research activities. Proficiency in TensorFlow and NumPy enables the candidate to build and optimize machine learning models, particularly deep learning and neural networks, to analyze complex datasets effectively. SPSS skills are used to perform rigorous statistical analyses that validate research findings and support evidence-based conclusions. Laboratory skills like gel electrophoresis are applied to experimentally verify biological hypotheses and complement computational results. Together, these skills ensure the Research Assistant can integrate computational and experimental approaches to contribute meaningfully to healthcare research projects.