Job Description Summary
The Lead of the Clinical Data Factory supports the data ecosystem that powers MUSC’s AI development workflows. This role ensures PI/PHI‑compliant synthetic data pipelines, model‑training readiness, system stability, and data availability by working w/IS architecture to keep the mini-arch ahead of major changes for continued workflow. The Lead works closely with Central IS Architecture and Security, and the AI Center to maintain an emergent AI architecture that reduces load on central IT while enabling rapid experimentation and compliant model development.Entity
University Medical Associates (UMA) Only Employees and FinancialsWorker Type
EmployeeWorker Sub-Type
ClassifiedCost Center
CC005532 EVPAA - Center for Artificial IntelligencePay Rate Type
SalaryPay Grade
Health-34Scheduled Weekly Hours
40Work Shift
Job Description
Primary Areas of Responsibility (with % Allocation)
1. Synthetic Data Pipeline Management & Compliance – 40%
Maintain high‑performance data pipelines meeting PI/PHI compliance standards.
Audit, monitor, and improve data quality, performance, and lineage.
Support model‑training workflows with high‑integrity synthetic datasets.
Ensure operational compliance, and follow through with IS Strategies and Approaches
2. System Architecture, Maintenance & Enhancement – 25%
Oversee lifecycle maintenance of AI Center Built Tools, patching, and upgrades to mini data infrastructure.
Partner with enterprise architecture teams to ensure alignment with evolving systems.
Communicate risks, dependencies, and required enhancements proactively.
3. Team Leadership & Technical Guidance – 20%
Lead and mentor Jr. Data Engineers and Jr. Architects.
Maintain documentation, operational workflows, and technical standards.
Coordinate team activities to meet service and uptime commitments.
4. Integration with AI Project Teams – 10%
Collaborate with AI Strategy & Ops, Research and AI Incubation teams to ensure data needs are met.
Provide technical support for data provisioning, synthetic layering, and model experimentation for the AI Center activities.
5. Governance, Quality & Model Integrity Support – 5%
Maintain data governance practices that support ethical model development.
Support model integrity monitoring and data risk mitigation in conjunction w/IS Guidance and Policy
Key Annual Performance Objectives
Meet synthetic data KPIs for quality, performance, and service uptime.
Reduce dependency on core IT architecture for AI model development.
Maintain compliance and operational stability of the synthetic data ecosystem.
Additional Job Description
Required Qualifications
Education: Master’s degree required.
Experience: 2–3 years of relevant experience with some leadership exposure, ideally in data engineering, architecture, synthetic data systems, or compliant data environments.
Technical Capability: Experience in data engineering, synthetic data pipelines, ETL/ELT workflows, or regulated healthcare data systems.
Compliance Knowledge: Familiarity with PI/PHI handling, HIPAA, or regulated‑data architectures preferred.
Leadership: Ability to mentor junior engineers/architects and coordinate technical backlog or system maintenance cycles.
If you like working with energetic enthusiastic individuals, you will enjoy your career with us!
The Medical University of South Carolina is an Equal Opportunity Employer. MUSC does not discriminate on the basis of race, color, religion or belief, age, sex, national origin, gender identity, sexual orientation, disability, protected veteran status, family or parental status, or any other status protected by state laws and/or federal regulations. All qualified applicants are encouraged to apply and will receive consideration for employment based upon applicable qualifications, merit and business need.
Medical University of South Carolina participates in the federal E-Verify program to confirm the identity and employment authorization of all newly hired employees. For further information about the E-Verify program, please click here: http://www.uscis.gov/e-verify/employees
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