Optum - Principal Data Scientist - GenAI/Agentic AI (12-17 yrs)

Optum Global Solutions
Posted on
Optum Global Solutions logo

Experience
12 - 17 yrs
Salary (CTC)
5,800,000 - 8,270,000
Job Location
Bengaluru, India
Vacancy
1
Designation
Principal Data Scientist
Job Type
ONSITE

Job Description

About Optum:

Optum is a global organization that delivers care, aided by technology to help millions of people live healthier lives. The work you do with our team will directly improve health outcomes by connecting people with the care, pharmacy benefits, data and resources they need to feel their best. Here, you will find a culture guided by inclusion, talented peers, comprehensive benefits and career development opportunities. Come make an impact on the communities we serve as you help us advance health optimization on a global scale. Join us to start Caring. Connecting. Growing together.

Role Overview:

As a Senior Data Scientist (SG 29), you will hands on design, build, and productionize Agentic AI and GenAI solutions on top of a Healthcare Core Data Platform. You will deliver reliable, compliant, and scalable AI systems that work across large healthcare datasets (claims/clinical/provider/member) and enable measurable improvements in quality, cost, and operational efficiency.

Primary Responsibilities:

- Design and implement agentic AI systems (multi-step, tool-using agents) that can plan, execute, and verify outcomes under defined guardrails for healthcare workflows.

- Build GenAI solutions using enterprise approved LLMs including Claude 4.6 and OpenAI Codex (and equivalents) for intelligent data exploration, automated insight generation, engineering productivity accelerators, and workflow automation.

- Develop hybrid systems combining LLMs with classical ML (predictive/prescriptive models) for robust performance on healthcare use cases.

- Implement AI solutions tightly integrated with the Core Data Platform (curated datasets, standardized semantics, governed access, reusable components).

- Own end-to-end delivery: problem framing - data readiness - prototyping - evaluation - production deployment - monitoring and iteration.

- Build and maintain evaluation frameworks for LLM and agent behavior (quality, hallucination risk, safety, latency, and cost).

- Ensure production readiness: reliability, observability, incident response, and cost controls.

- Build solutions compliant with healthcare privacy and governance expectations (e.g., PHI handling, access controls, auditability, retention, and policy adherence).

- Influence adoption through hands-on artifacts: reference implementations, templates, evaluation harnesses, reusable agent patterns, and technical documentation.

Required Qualifications:

- Bachelor's or Master's degree in Computer Science, Data Science, Statistics, Engineering, or related field.

- 12+ years of overall experience, with 5+ years in Data Science / AI/ML / Applied AI in enterprise environments.

- Hands-on experience with ML frameworks: Scikit Learn, and at least one of TensorFlow / PyTorch.

- Experience building evaluation + monitoring for ML/AI systems (metrics, drift, observability, reliability).

- Practical experience applying LLMs and coding assistants in real workflows, including Claude 4.6 and OpenAI Codex (or equivalent enterprise-approved tools/models).

- Solid proficiency in Python (pandas, numpy) and SQL; solid debugging and problem-solving skills.

- Proven track record delivering production-grade AI/ML solutions end-to-end (not just experimentation).

Preferred Qualifications:

- Hands-on experience with agentic orchestration patterns: tool calling, memory strategies, guardrails, and multi-step workflow design.

- Experience with streaming/event-driven systems (Kafka) for near-real-time use cases.

- Exposure to LLMOps / AgentOps: prompt/version management, automated evaluation, red-teaming, telemetry, CI/CD integration.

- Familiarity with big data / distributed compute (PySpark, distributed SQL engines) and large-scale pipelines.

- Healthcare domain familiarity: claims/clinical/provider/member data and regulated delivery environments (privacy/security/compliance).

- Proven ability to own complex problem spaces end-to-end with minimal supervision, from design through production operations.

- Proven ability to drive impact primarily through technical execution and reusable artifacts, not people management.

- Proven ability to make engineering tradeoffs across accuracy, safety, latency, reliability, compliance, and cost and documents decisions clearly.

- Proven ability to produce solutions that are adoptable and repeatable across multiple assets via templates, libraries, and reference implementations.

Success Measures (What "Good" Looks Like in 6-12 Months):

- Production Adoption: agent/GenAI capability used by multiple downstream teams or workflows.

- Quality & Safety: measurable improvements in evaluation scores; reduced hallucination/safety incidents via guardrails.

- Operational Excellence: monitoring coverage, drift detection, and incident response readiness implemented.

- Productivity: reduced cycle time for analytics/engineering workflows via Claude 4.6/Codex-enabled accelerators.

- Governance: audit-ready documentation, controlled PHI access, compliant deployments.

Mission:

At UnitedHealth Group, our mission is to help people live healthier lives and make the health system work better for everyone. We believe everyone - of every race, gender, sexuality, age, location and income - deserves the opportunity to live their healthiest life. Today, however, there are still far too many barriers to good health which are disproportionately experienced by people of color, historically marginalized groups and those with lower incomes. We are committed to mitigating our impact on the environment and enabling and delivering equitable care that addresses health disparities and improves health outcomes - an enterprise priority reflected in our mission.


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