Clinical Data Manager
Plaats
1

Clinical Data Manager vacatures bij Radboudumc

10 dagen geleden

a Judge

uren1 - 40 uur
dienstverbandVast
werk locatieNijmegen
opleidingsniveauWO
brancheGezondheidszorg/Welzijn

Functieomschrijving

  • LLM-as-a-Judge as a validation framework for clinical Generative AI tools
  • LLM as a Judge as a validation framework for clinical Generative AI tools

    Background

    Generative AI (GenAI) applications are increasingly being integrated into clinical workflows to reduce the workload of healthcare professionals and improve efficiency [1]. At Radboudumc, several GenAI tools are currently being evaluated in pilot settings within the electronic health record (EHR) system Epic. These include "ART", a tool that drafts responses to patient messages, and "OP & IP Insights", which automatically summarize recent medical notes.

    To ensure safe and responsible deployment in clinical practice, these tools require thorough validation, not only during initial deployment but also whenever the underlying large language models (LLMs) or prompts are updated. Traditional human validation is resource-intensive and does not scale well. Recently, the concept of LLM-as-a-Judge has been proposed, where an LLM is used to automatically evaluate the output of another LLM on dimensions such as correctness, completeness, relevance, and potential harm [2]. This project explores whether such an approach can serve as a reliable and efficient validation framework for clinical GenAI tools within the EHR.

    Approach

    In this project, the student will design and implement an LLM-as-a-Judge framework tailored to the Radboudumc context. The framework will be applied to evaluate outputs from existing Epic-integrated GenAI tools.

    Depending on the student's interests, the project may focus on:

    • Comparing LLM-based evaluations with human annotations
    • Studying the robustness and bias of LLM-as-a-Judge scores
    • Experimenting with different judge models, prompts, and evaluation rubrics

    The work will contribute to the development of a scalable technical validation pipeline for clinical GenAI, supporting future implementation and updates of these tools in routine care.

    Data

    The project will use extracted data from real clinical EHR workflows at Radboudumc. Available data include:

    • Drafted and final clinician-approved responses to patient messages (ART)
    • Original clinical notes and their automatically generated summaries (OP & IP Insights)

    Where available, clinician outputs will serve as a reference standard.

    References

    [1] Hu, D., Guo, Y., Zhou, Y., Flores, L., & Zheng, K. (2025). A systematic review of early evidence on generative AI for drafting responses to patient messages. npj Health Systems , 2(1), 27.

    [2] Croxford, E., Gao, Y., First, E., Pellegrino, N., Schnier, M., Caskey, J., ... & Afshar, M. (2025). Evaluating clinical AI summaries with large language models as judges. npj Digital Medicine , 8(1), 640.

    Requirements

    Students in the final phase of a Master's program in Artificial Intelligence, Computer Science, Biomedical Engineering, Data Science, or a related field are invited to apply.

    Required skills:

    • Experience with Python programming
    • Familiarity with machine learning or NLP concepts

    Affinity with clinical AI validation, LLMs, or healthcare data is a strong plus.

    Information

    Project duration: Approximately 6 months (flexible, depending on student interests)

    Location: Radboud University Medical Center

    The student will be embedded in the Implementation, (De-)Implementation and Behavioural Change group of the IQ Health department and collaborate closely with clinical, AI, and IT stakeholders. Access to GPU resources will be arranged through existing institutional infrastructures.

    For more information, please contact Julie Swillens ().

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