Live opening · Posted 2 days ago

AI Engineer

Clair Labs · Bangalore | Gurgaon | Noida
Instahyre 5-8 yrs
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At a glance

The key details from the original listing.

Posted 2 days ago
CompanyClair Labs
LocationBangalore | Gurgaon | Noida
Experience5-8 yrs
SourceInstahyre
Listed2 days ago

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About the role

Description supplied by the original job listing.

Responsibilities:
Design and ship AI-powered product features (LLMs, RAG, agents, and ML APIs) into our existing services, working closely with backend, frontend, and data science teams.
Integrate off-the-shelf and in-house models (LLMs, embeddings, ML APIs) into robust microservices and user-facing flows.
Design and implement RAG and workflow/agent pipelines: retrieval, context assembly, tool integration, guardrails, and fallbacks.
Own AI service reliability in production: latency, throughput, cost, observability, circuit breakers, and rollback/versioning of models and prompts.
Collaborate with data scientists who own model training/finetuning and evaluation design; productionize their outputs as stable APIs/workflows.
Implement logging, feedback capture, and lightweight online evaluation hooks to measure the quality of AI features over time.
Ensure safety, security, and compliance for AI features: prompt injection defenses, PII handling, abuse/hallucination controls, and audit trail.
Contribute to internal AI tooling: SDKs, templates, and reusable components to accelerate future AI use cases.
Requirements:
AI Engineer role demands more than AI-based augmentation, with an in-depth understanding of concepts like RAG, GenAI, LLM fine-tuning, Prompt engineering, multi-agent frameworks (LangGraph, gChain, etc., with hands-on experience; eval generation and their importance; token usage and optimisations. Model/MCP gateway.
Strong software engineering in Python (and one of Node/Java/Go), REST/gRPC APIs, queues, and microservices on cloud infra.
Hands-on experience shipping at least one AI-powered product to production (e. g., search, recommendations, chatbots, summarization, classification).
Practical knowledge of LLM concepts: prompts, context engineering, embeddings, vector search, basic evaluation metrics, and latency/cost trade-offs.
Solid understanding of integration patterns with third-party AI providers (OpenAI, Anthropic, etc. ) and vector DB.
Hands-on & good understanding of at least one agentic framework like Langgraph.

Experience
5-8 yrs

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