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Brillio

Senior AI/ML Engineer - R01571019

Bengaluru · Mid Level

Good timing - competition is buildingVerified listingPosted 11d ago

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Your match scoreCalculated · locked
86Overall
64Skills
97Experience

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What we know about this role

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First 72 hours

Window passed - posted 11d ago

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Skills required

21 listed
Human-In-The-LoopCI/CDAgentic AIEnterprise ArchitectureException HandlingEnvironment ManagementSemantic KernelAmazon Bedrock+13 more
Human-In-The-LoopCI/CDAgentic AIEnterprise ArchitectureException Handling

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Job description

Senior AI/ML Engineer


Job requirements
AI Production Engineer - Agentic Systems Role Overview We are looking for an AI Production Engineer to turn agentic AI designs into secure, reliable, and scalable production solutions. Working closely with Enterprise Architecture, Security, this role will build and deploy agents, orchestration workflows, integrations, and the supporting production control. This is a hands-on engineering role focused on operationalizing AI, not AI research or model training. The successful candidate should be comfortable working with different agentic design patterns, technology platforms, and models. Key Responsibilities
  • 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.
  • Required Experience
  • 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.
  • Preferred Experience
  • 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.
  • What Success Looks Like
  • 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.
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    All open roles at BrillioAll Machine Learning Engineer jobs in Bengaluru

    Two ways in

    Applicants who checked fit first are 3.1× more likely to hear back

    Your match scoreCalculated · locked
    86Overall
    64Skills
    97Experience

    Your score for this role already exists

    ASAI compared this JD against 41 signals - skills, seniority, domain, stack overlap etc. Add a resume and it unlocks in about 30 seconds.

    No credit card · 1 tap with Google

    Free · no signup

    Get tomorrow's jobs before you have to search

    Daily job drops, skill trends and free resources - posted straight to the group. Leave any time.

    Join WhatsAppJoin Telegram

    No spam. Just jobs and resources.

    Why people use ASAI

    Someone shared one job with you. ASAI keeps finding the rest.

    • Scored, not searched. Every role ranked against your actual profile.

    • Alerts as often as hourly. Reach new roles while the pile is still small.

    • Skill gaps, spelled out. See exactly which requirements you don't meet yet.

    • Verified jobs, only. Say no to ghost jobs. Your time deserves respect.

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