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External Research Data Governance Lead

GSK
Full-time
Remote friendly (Collegeville, PA)
United States
Corporate Functions

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Role Summary

External Research Data Governance Lead role within the Data, Automation and Predictive Sciences (DAPS) function to advance data-as-an-asset strategies, drive research productivity and innovation for patients. Responsible for ensuring external data engagements align with scientific objectives, ethical standards, and regulatory expectations, evolving with GSKβ€šΓ„Γ΄s external data ecosystem. Collaborates across multiple teams to integrate governance into research workflows and contractual frameworks, ensuring data utility, integrity, compliance, and participant privacy.

Responsibilities

  • External Data Engagement Support: Partner with research teams to evaluate and advise on the type, structure, format, and utility of external data assets; provide guidance on data acquisition, licensing, and access models; embed governance-by-design controls across data ingestion, integration, and reuse; ensure data used in AI model training and computational workflows meets standards for traceability, rights management, and reproducibility.
  • Contractual and Compliance Governance: Collaborate with Legal, Procurement, and Business Data Owners to review data schedules; document data use rights, reuse/sharing restrictions, retention, and ownership terms; identify data/IP risks and provide governance recommendations to mitigate misuse, leakage, or compliance exposure; align with global privacy regulations and internal ethical standards.
  • External Data Governance Frameworks: Drive consistent governance practices for data from academic collaborations, partnerships, public repositories, or third-party vendors; develop and maintain policies, standards, and playbooks for external data assessment, onboarding, and lifecycle management; champion FAIR and ALCOA+ principles for externally sourced datasets.
  • Governance, Ethics, and Privacy Leadership: Support the Head, Research Data Office in shaping positions on data ethics, AI governance, and open data policies; drive compliance with data protection regulations, and align research governance with privacy and AI ethics frameworks; promote an ethical data culture with responsible reuse and transparency.
  • Cross-Functional Collaboration and Thought Leadership: Bridge scientific/digital domains with Procurement and Legal, translate governance into actionable data governance expectations; partner with data owners, computational scientists, and platform teams to streamline governance processes; represent Research in enterprise data governance engagements and stay abreast of external standards and policy changes; lead training on data rights, responsible reuse, and computational governance.

Qualifications

  • Required: Advanced degree (MSc, PhD, JD, or equivalent) in Life Sciences, Data Science, Bioinformatics, Computer Science, Biological/Chemical Engineering, or related field; minimum 5 yearsβ€šΓ„Γ΄ relevant experience in research data governance, digital R&D, or computational research operations in pharmaceutical/biotech settings. 8+ years or PhD with 5+ years of applied experience preferred for senior roles.
  • Knowledge of research data modalities (omics, imaging, clinical, real-world, structural biology, AI training datasets, public data repositories) and related metadata standards.
  • Experience navigating data licensing, contractual data rights, and ethical data use frameworks; familiarity with data privacy laws (GDPR, HIPAA, EHDS, and country-specific legislation) and IP protection principles in research collaborations.

Preferred Qualifications

  • Excellent stakeholder management across scientific, legal, procurement, compliance, and digital domains.
  • Strong understanding of research data modalities and metadata standards; pragmatic, solution-oriented with ability to balance scientific agility and compliance; experience embedding FAIR, ALCOA+ and Governance-by-design into data management and computational workflows.
  • Strategic thinker able to translate governance principles into practical implementation guidance for research environments.
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