AI Engineer (Hyderabad)

AI Engineer (Hyderabad)

19 Sep
|
MetLife
|
Hyderabad

19 Sep

MetLife

Hyderabad

Role Purpose:

The AI Engineer works with business stakeholders, solution leads, architects, and engineering peers to transform business needs into working AI-enabled products. The role requires strong hands-on development capability, an agile delivery mindset, and the ability to communicate clearly with both technical and business audiences.

Key Responsibilities:

- Support requirement clarification by asking practical questions, identifying assumptions, and helping break business needs into manageable technical tasks.
- Develop proof of concepts, prototypes, MVP components, and production-ready features for AI and agentic applications.
- Build and maintain Python services, APIs, data pipelines, LLM orchestration flows, prompt/context logic, and integration components.
- Use GitHub Enterprise or equivalent tooling for source control, pull requests, code review, branching, and release collaboration.
- Implement automated testing, CI/CD pipelines, containerized deployments, monitoring, observability, evaluation frameworks, and environment configuration.
- Design and implement AI solutions aligned with Responsible AI, security, privacy, compliance, auditability, and enterprise governance requirements.
- Collaborate with cloud, security, architecture, data, and operations teams to meet enterprise delivery standards.
- Participate actively in agile ceremonies including daily standups, sprint planning, backlog refinement, demos, and retrospectives.
- Document technical designs, setup steps, known limitations, operational runbooks, and support notes clearly.

Required Technical Skills:

- Experience with LangChain, LangGraph, Microsoft Agentic Framework (MAF) or similar frameworks for LLM/agentic application development.




- Strong Python programming skills for backend development, data processing, automation, and AI application development.
- Cloud-based development experience on Azure, AWS, Google Cloud, or similar platforms; Azure experience preferred.
- Understanding of LLM concepts including prompt engineering, context engineering, harness engineering, retrieval patterns, evaluation, and error analysis.
- Experience defining and implementing automated evaluation frameworks, test datasets, and success criteria for AI and agentic AI solutions.
- Understanding of token usage, model selection, latency optimization, scalability, and cost management considerations for enterprise AI solutions.
- Data engineering fundamentals, including data pipelines, APIs, structured/unstructured data handling, validation, and transformation.
- GitHub Enterprise, GitHub Actions, Azure DevOps, or equivalent source control and CI/CD tooling experience.
- Docker and Kubernetes fundamentals for packaging, deployment, configuration, and runtime troubleshooting.
- Testing and quality practices including unit tests, integration tests, regression checks, and secure coding basics.
- MVP definition and delivery planning: ability to identify the minimum viable product, define scope boundaries, prioritize features, validate assumptions, and create a practical roadmap from prototype to production delivery.
- Model Context Protocol (MCP)



& Agent2Agent fundamentals and practical ability to implement or integrate tools/resources for agentic applications.

Required Soft Skills:

- Proactive communication: raises risks, blockers, assumptions, and progress clearly without waiting to be asked.
- Curiosity and problem-solving mindset: investigates business context and technical root causes, not only assigned tasks.
- Collaboration skills: works effectively with business users, senior engineers, architects, remote members, and vendors.
- Learning agility: can quickly pick up recent frameworks, cloud services, LLM patterns, and enterprise delivery standards.
- Quality ownership: takes responsibility for maintainable code, clear documentation, testing, and operational readiness.
- Ability to explain technical work in simple business language when needed.

Nice to Have:

- Experience in insurance, financial services, customer service, call center, underwriting, claims, producer support, or policy administration projects.
- Experience working with remote and overseas teams.
- Japanese business communication ability is a plus for Japan-based stakeholder discussions.
- Experience with RAG pipelines, vector search, knowledge article ingestion, conversation analytics, or AI evaluation frameworks.

Success Measures:

- Features are delivered with good quality, maintainability, and clear documentation.
- Business requirements are implemented accurately and validated through demos or acceptance criteria.
- CI/CD, testing, and deployment practices reduce manual work and delivery risk.
- The engineer contributes proactively to team learning, issue resolution, and continuous improvement.

📌 AI Engineer (Hyderabad)
🏢 MetLife
📍 Hyderabad

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