Postdoctoral Fellow in Biostatistics & Health Data Science
Appointment Type
Postdoctoral Fellow
Department
IUSM - Biostatistics
Position Summary
Research Context & Opportunity- Modern healthcare increasingly depends on integrating data across hospitals, registries, cohorts, and public health systems. Yet semantic heterogeneity-differences in terminology, structure, and logic-remains a central barrier to reusability, interoperability, and reproducibility.
This postdoctoral position addresses a fundamental and timely research question: How can Large Language Models (LLMs) and intelligent agents support transparent, scalable, and auditable clinical data harmonization?
We are particularly interested in:
- LLM-driven systems for aligning real-world health data to standards like OMOP CDM, FHIR, and UMLS
- Agent-based workflows that explain, refine, and adapt semantic mappings over time
- Hybrid architectures that combine knowledge-grounded reasoning with flexible machine learning
- Tools that reduce manual burden while preserving traceability and clinical interpretability
This position offers the opportunity to publish novel methods, work with real messy multi-source data, and contribute to infrastructure supporting population-level research and health equity.
The postdoctoral fellow will be based in the Department of Biostatistics and Health Data Science at Indiana University School of Medicine, in close collaboration with the Regenstrief Institute.
Responsibilities
- Design and implement LLM-based methods for clinical data harmonization, semantic normalization, and ontology alignment
- Develop multi-agent or RAG-style workflows for schema matching and terminology mapping
- Collaborate with national and multi-institutional initiatives in data integration and standardization
- Support open-source tooling, reproducible pipelines, and standards-based approaches
- Lead or support manuscript preparation and dissemination
- Contribute to grant development and proposal writing
What We Offer
- A collaborative environment at the intersection of real-world data, applied AI, and translational science
- Opportunities to work across academic, clinical, and public health settings
- Mentorship and support toward independent research or career development
- Competitive salary and benefits through Indiana University
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