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HomeCompaniesFrontier | Strategy & AgentsArtificial Intelligence Engineer
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Artificial Intelligence Engineer

📍LOCATIONBengaluru, Karnataka, India (Remote)
🕘TYPEFull-time
🏥IndustryNot specified
🗓POSTED9 Sept 2026

01Overview

About the job We build agentic AI systems for institutional investors, powered by two engines: OmniContext™, our hybrid context engine, and SmartOrch™, our agentic orchestration engine. Building and deploying AI applications Multi-agent workflows in LangGraph, LangChain and Google ADK — routing, delegation, durable execution, human-in-the-loop Hybrid retrieval: knowledge graph (Neo4j/Cypher) + vector (pgvector, Qdrant) + SQL, with query routing and reranking Gemini, OpenAI, Azure OpenAI and Anthropic, with model-agnostic routing and fallback Agent harness — tools, MCP, guardrails, structured outputs, context and token budgeting Eval infrastructure — golden datasets, regression suites, grounding and hallucination checks Production tracing: model, prompt version, retrieved span, tool call, approver Software engineering fundamentals Python (FastAPI, Pydantic, asyncio) and Node.js/TypeScript services; React/Next.js front-ends Postgres and Firestore modelling; document ingestion, entity resolution, schema-drift detection Docker, Kubernetes, Terraform, CI/CD on GCP, Azure or AWS SSO/RBAC, private networking, secrets management, audit logging Deployment into client cloud, on-prem and restricted environments — including open-weight serving (vLLM, Ollama) Orchestrating agents Decomposing work into tasks an agent can complete, with the context to make that likely Setting up tests and feedback loops for longer unsupervised runs Reviewing agent output critically — you own everything that ships under your name Building skills, tools and MCP servers so agents are useful on our codebase Shaping the build Scoping ambiguous client problems into something shippable Taking a technical position and defending it, with nobody senior to defer to Knowing when a workflow doesn't need an agent You 4+ years shipping production software, full stack in Python and TypeScript Built a RAG system and then fixed it; can talk about failure modes, chunking, reranking Production experience with an agent framework — not tutorials You write evals and have caught a regression before a user did Strong SQL; graph databases or able to pick them up fast Docker, Kubernetes, CI/CD and at least one major cloud Comfortable in front of a client, not just a codebase Bonus: entity resolution · text-to-SQL · MCP/A2A · Vertex AI or Azure OpenAI in production · on-prem or regulated delivery · financial services domain We're hiring two engineers to expand the core team.
Not disclosed · salary hidden by employer
Bengaluru, Karnataka, India (Remote)
Applications are reviewed directly by the hiring team.
Role Snapshot
Work ModeNot specified
Visa SponsorshipNot specified
RelocationNot specified
Job TypeFull-time
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