Senior AI/ML Engineer - R01571019
Summary
Hands-on AI Production Engineer role in Bangalore building and deploying production-grade agentic AI: agents, orchestration workflows, and enterprise integrations with security, automated testing, CI/CD, and monitoring. Core stack: Python, LLM agent frameworks (Agents SDK, LangGraph, Semantic Kernel, AWS Bedrock), Git, containers, and cloud.
Job requirements
- Build and deploy production-grade AI agents and multi-step orchestration workflows based on approved architecture.
- Integrate agents with enterprise APIs, knowledge sources, business applications, databases, and automation platforms.
- Implement tool calling, workflow state, memory, human approvals, exception handling, and recovery mechanisms.
- Develop reusable services and APIs that allow agents to interact safely with enterprise systems.
- Apply responsible-AI and security controls, including authentication, authorization, data protection, audit logging, and human oversight.
- Implement automated testing for prompts, tools, integrations, workflows, security controls, and end-to-end agent behaviour.
- Establish monitoring for quality, latency, cost, tool failures, model behaviour, and production incidents.
- Build CI/CD pipelines and support-controlled releases, rollback, versioning, and environment management.
- Troubleshoot production issues and continuously improve agent reliability and performance.
- Partner with Architecture to translate approved patterns and standards into deployable solutions.
- 4–5 years of experience in software, cloud, integration, automation, or AI engineering.
- At least 1–2 years of hands-on experience deploying LLM or agentic applications into production.
- Strong development experience in Python and working knowledge of APIs, event-driven integrations, and databases.
- Experience with at least one agent framework or platform, Agents SDK, LangGraph, LangSmith, Semantic Kernel, AWS Bedrock, or a comparable solution.
- Experience implementing retrieval, tool calling, workflow orchestration, structured outputs, and human-in-the-loop processes.
- Practical experience with Git, automated testing, CI/CD, containers, and cloud deployment.
- Experience with production monitoring, logging, alerting, incident investigation, and performance optimization.
- Understanding of enterprise security, identity, secrets management, access controls, and protection of sensitive data.
- Ability to work across architecture, security, platform, and business teams.
- Experience with Azure or AWS and infrastructure-as-code tools.
- Familiarity with Kubernetes, serverless services, API gateways, message queues, or workflow platforms.
- Experience evaluating agent quality, task completion, groundedness, tool selection, safety, latency, and cost.
- Understanding of tracing and observability across prompts, models, tools, APIs, and workflow steps.
- Experience integrating AI solutions with platforms such as SharePoint, Salesforce, ServiceNow, Jira, or enterprise data services.
- Agentic solutions move from approved design to production through a repeatable and governed process.
- Deployments are secure, observable, testable, and recoverable.
- Agent decisions, tool calls, data access, failures, and human approvals are traceable.
- Solutions meet agreed expectations for reliability, quality, latency, cost, and responsible-AI controls.
Skills
- Agentic AI
- AI
- API
- Authentication
- Automation
- AWS
- AWS Bedrock
- Azure
- CI/CD
- Cloud
- Design Patterns
- Event Driven Architecture
- Git
- Incident Investigation
- Infrastructure as Code
- Jira
- Kubernetes
- LangGraph
- LangSmith
- LLM
- Machine Learning
- Observability
- Python
- Salesforce
- Secrets Management
- Semantic Kernel
- Serverless
- ServiceNow
- SharePoint
- Test Automation
- Workflow Orchestration
As published by lever
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