Jobgether
Jobgether

Data Scientist Principal, AI Development and Governance

datafull-timeUS
SALARY
$119k – $161k/yr
WORK TYPE
remote
JOB TYPE
full-time
INDUSTRY
general
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About the role

Accountabilities:

    • Establish modeling and validation standards for the Data Science team, including expectations for model documentation, monitoring, drift detection, bias assessment, and production readiness.
    • Review data science models against established standards before production deployment and provide recommendations on the highest-priority improvements required for quality, reliability, and governance.
    • Develop and maintain responsible-AI and generative-AI policies covering both customer-facing or investigator-facing use cases and internal AI-enabled development tools.
    • Build and deploy machine learning models for healthcare fraud, waste, and abuse detection, including supervised risk scoring and feature engineering across large-scale claims data.
    • Validate models under significant class imbalance and evolving fraud patterns, ensuring methodologies remain appropriate as new evidence and behaviors emerge.
    • Evaluate potential generative AI applications for feasibility, reliability, risk, and suitability within a highly scrutinized healthcare environment, including recommending against adoption when a use case is not sufficiently mature.
    • Explain model methodologies, validation results, governance controls, and AI-assisted processes to healthcare partners, internal stakeholders, and auditors.
    • Defend technical and governance decisions to both highly technical reviewers and stakeholders without specialized data science backgrounds.
    • Collaborate with Data Scientists, BI Developers, and FWA Subject Matter Experts across a fully distributed U.S. team, serving as a key resource for governance and AI-related questions.
    • Contribute to the continuous improvement of technical standards, governance practices, and AI capabilities as the organization’s data science environment evolves.
    • Requirements:

      • Master’s degree in statistics, computer science, engineering, applied mathematics, economics, or another quantitative discipline, or a bachelor’s degree in a related quantitative field combined with equivalent hands-on experience.
      • 8+ years of experience building, validating, and deploying machine learning models using real-world data, including experience establishing technical standards for other data scientists.
      • Strong working knowledge of responsible AI and model-risk practices, including model documentation, monitoring, bias and drift detection, validation, and production governance.
      • Demonstrated experience evaluating generative AI and LLM use cases for both technical feasibility and risk, including the ability to determine when an LLM should not yet be used for a particular application.
      • Strong Python and SQL skills, including experience performing feature engineering and analytical work within very large-scale data warehouses.
      • At least 2 years of experience working with healthcare claims data, including Medicare, Medicaid, or commercial claims, together with working knowledge of medical terminology and coding systems such as ICD-10, CPT, HCPCS, and DRG.
      • Experience presenting technical methodologies, model results, and governance decisions to clients, partners, auditors, or other stakeholders, with the ability to adapt explanations to both technical and non-technical audiences.
      • Strong analytical and critical-thinking skills, with the ability to assess complex AI systems, identify risks, and establish practical standards for responsible deployment.
      • Prior experience in a formal model-risk or responsible-AI role is desirable, including experience outside the healthcare sector.
      • Experience with graph or network analytics, entity resolution, or record linkage is an advantage.
      • Experience piloting generative AI tools in regulated or high-scrutiny environments is preferred.
      • Experience with AWS and/or Snowflake environments, including Snowpark or model lifecycle tooling, is beneficial.
      • Familiarity with payer coverage policies such as LCDs, NCDs, private carrier policies, and industry claim edits such as NCCI is a plus.
      • No U.S. citizenship requirement and no security clearance is required for this position.
      • Benefits:

        • Fully remote, full-time position with a distributed U.S. team.
        • Estimated salary range of $119,000–$161,000, with actual compensation determined by experience, geographic location, and potentially contractual requirements.
        • Full-flex work week designed to provide flexibility in managing work and personal priorities.
        • Comprehensive medical plan options, including plans with Health Savings Accounts.
        • Dental and vision coverage.
        • 401(k) plan with company matching contributions.
        • Paid time off, including vacation, sick, and personal leave, plus paid holidays.
        • Typically 15 days of paid leave per calendar year for vacation, personal business, and illness, plus 10 paid holidays, subject to eligibility and prorating.
        • Paid family leave of up to 160 hours in a rolling 12-month period for eligible employees.
        • Paid parental, military, bereavement, and jury duty leave.
        • Short- and long-term disability coverage, life insurance, accidental death and dismemberment coverage, personal accident, critical illness, and business travel and accident insurance.
        • Tuition assistance and professional development opportunities.
        • Internal mobility support and career development resources.
        • Less than 10% travel expected.
        • Opportunity to work on large-scale healthcare data, machine learning, generative AI, and responsible AI governance.
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Data Scientist Principal, AI Development and Governance at Jobgether — Remote