Live opening · Posted 23 hours ago
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About the role
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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.
Primary Responsibilities
AI native Engineering & Delivery
Drive the design, development, and rollout of AI/ML and Generative AI capabilities that solve business problems and improve operational outcomes
Work closely with product, business, data, and architecture partners to define solution approaches and implementation strategies
Ensure AI-enabled applications meet expectations for performance, scalability, maintainability, and regulatory compliance
Promote adoption of reusable frameworks, accelerator assets, and engineering best practices to improve delivery efficiency
Lead execution of engineering roadmaps, release plans, and solution enhancements across multiple initiatives
ML Ops, Platform Engineering & Cloud Enablement
Build and enhance enterprise ML Ops capabilities supporting the full AI lifecycle from experimentation through production operations
Implement automated workflows for model training, validation, deployment, monitoring, rollback, and version management
Establish model observability practices, including performance monitoring, drift detection, retraining strategies, and operational intelligence
Improve reproducibility and governance of datasets, prompts, models, features, and experiments
Partner with platform and infrastructure teams to advance CI/CD, Infrastructure-as-Code, containerization, and deployment automation
Enable scalable and cost-efficient AI workloads across cloud platforms and modern engineering ecosystems
Responsible AI & Technical Governance
Develop and apply standards for responsible and trustworthy AI adoption
Establish evaluation approaches for model quality, accuracy, explainability, safety, and risk management
Guide implementation of retrieval, prompting, orchestration, and human oversight patterns for GenAI solutions
Assess emerging technologies and identify opportunities that create measurable business value
Contribute to architectural decisions, engineering standards, and technology modernization efforts
Engineering Leadership & Business Partnership
Lead and mentor teams of AI/ML engineers, fostering ownership, technical excellence, and continuous learning
Support talent development through coaching, skill growth, succession planning, and knowledge-sharing initiatives
Coordinate with cross-functional stakeholders to manage priorities, dependencies, risks, and resource needs
Provide transparency into delivery progress, operational metrics, adoption trends, and business outcomes
Influence AI adoption and engineering maturity within the broader organization through collaboration and thought leadership
Demonstrate adherence to organizational policies, compliance requirements, security standards, and evolving business practices while maintaining a culture of accountability and integrity
Design, develop, and deploy AI-powered solutions using no-code, low-code, and advanced platforms, translating business needs into scalable applications that enhance products, workflows, and decision-making
Comply with all applicable Company policies, procedures, and business directives, changes including those relating to work location, team assignments, work schedules, and flexible work arrangements
Required Qualifications
Bachelor's degree in Computer Science, Artificial Intelligence, Data Science, Engineering, Mathematics, Information Technology, or a related field; equivalent experience considered
Experience in AI/ML engineering, software engineering, data engineering, or related technical disciplines
Hands-on experience delivering Generative AI, LLM, AI Agent, Copilot, or intelligent automation solutions
Experience working within Agile, Scrum, or product-centric delivery models
Experience with prompt engineering, workflow orchestration, tool integration, and AI solution evaluation
Experience integrating AI solutions with cloud platforms, APIs, databases, and enterprise applications
Experience with cloud-native application development and deployment environments
Working knowledge of RAG architectures, embeddings, vector databases, semantic search, and enterprise knowledge retrieval
Hands-on knowledge of ML Ops practices including model deployment, model versioning, monitoring, retraining, and lifecycle management
Understanding software engineering practices including source control, automated testing, CI/CD, and release management
Understanding of responsible AI, security, governance, compliance, and operational controls for AI solutions
Solid troubleshooting, problem-solving, communication, and stakeholder management skills
Solid programming skills in Python with experience building APIs, services, and enterprise-grade applications
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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