Artificial Intelligence Engineer (Bengaluru)

Artificial Intelligence Engineer (Bengaluru)

19 Sep
|
Indium
|
Bengaluru

19 Sep

Indium

Bengaluru

Role: AI/ML Engineer

Experience : 6+ years

Location : Bengaluru, Chennai and Hyderabad

Shift Timings : 1 PM to 10 PM IST

Notice Period : 0-15 Days

Primary Skills – Solid AI/ML Background , Experience in Gen-AI with exposure to AWS Bedrock & Bedrock Agents, Multi-agent Orchestration, Databricks and AI Governance

Please find below detailed JD

1. AI Governance & Risk

- Translate AI governance frameworks such as NIST AI RMF, ISO/IEC 42001, and EU AI Act requirements into practical engineering controls.
- Implement PII detection, masking, and redaction at AI gateway and application layers.
- Implement data classification, lineage, and policy enforcement for AI workloads.
- Design permission-aware RAG so users and agents can retrieve only authorized enterprise data.
- Establish agent risk tiers based on autonomy, data sensitivity, tool access, and business impact.
- Implement human-in-the-loop approval gates for high-risk or irreversible actions such as database writes, financial transactions, and external communications.
- Implement monitoring for guardrail violations, policy deviations, anomalous agent behavior, and unauthorized tool usage.
- Maintain an enterprise AI inventory covering models, agents, tools/MCP servers, workloads, and associated risks.
- Support production change management and governance for models, prompts, agents, tools, and AI workflows.

1. Agentic AI & ML Engineering

- Design and develop production-grade multi-agent and agentic AI systems using frameworks such as LangGraph, Strands, AutoGen, CrewAI, or equivalent.
- Define clear autonomy boundaries, tool permissions,



escalation paths, and failure-handling mechanisms for AI agents.
- Build enterprise RAG pipelines with access-controlled retrieval and governance-aware data flows.
- Design and implement prompt management and version control, including approval and evaluation gates before production deployment.
- Integrate MCP (Model Context Protocol) servers and tools using appropriate trust boundaries and per-agent permissions.
- Develop automated evaluation pipelines for quality, safety, grounding, reliability, and agent behavior.
- Implement continuous monitoring for model, prompt, retrieval, and agent performance drift.

1. AWS Architecture & Platform Engineering

- Design and implement secure AI workloads using AWS Bedrock, IAM, Lambda, ECS/Fargate, and related AWS services.
- Implement authentication, authorization, secrets management, network controls, and least-privilege access for AI workloads.
- Leverage Bedrock Guardrails and AgentCore or equivalent AWS-native capabilities where appropriate.
- Design scalable architectures for enterprise agentic workloads with appropriate isolation and security boundaries.
- Work with Databricks or equivalent data platforms to integrate data classification, permissions, and lineage into AI applications.

1. AI Observability & Cost Governance

- Implement LLM and agent observability using platforms such as Langfuse, Arize, or equivalent.
- Build dashboards and monitoring for:
- Evaluate and implement AI gateway solutions such as LiteLLM, Kong AI Gateway, Portkey, or AWS-native controls.

📌 Artificial Intelligence Engineer (Bengaluru)
🏢 Indium
📍 Bengaluru

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