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AI Engineer

Analytics Vidhya · Gurugram, HR, India

External listingfull-time2 months ago

About The Role

  • We are looking for an AI Engineer to design, build, and ship AI models and AI-native features that power the next wave of learning at
  • Analytics Vidhya — adaptive curricula, intelligent tutors, automated assessments, and content generation. You will own ideas end-to-end
  • and use AI-powered dev tools like Claude Code and Codex to ship faster than a traditional ML team.

WHAT YOU 'LL DO

  • Build AI models — fine-tune and deploy LLMs, embedding models, and classical ML to power tutoring, recommendations,

assessments, and content generation across our Ed-Tech products.

  • Prototype to production — translate fuzzy product ideas into working prototypes in days, then harden them into reliable services

with proper evals, guardrails, and monitoring.

  • AI-native engineering — use Claude Code, Codex, and Cursor as daily drivers to design, refactor, and test code; orchestrate agents

and tool-use for non-trivial workflows.

  • Retrieval & agents — design RAG pipelines, vector search, and agentic systems over our learning content, course catalogs, and user

signals.

  • Evals & quality — build evaluation harnesses, golden sets, and A/B experiments to keep model quality measurable and improving.
  • Collaborate cross-functionally — partner with product, design, and content teams to scope problems, define success metrics, and

ship learner-facing impact.

MUST HAVE

  • 2–6 years building and shipping AI / ML systems in production (not just notebooks).
  • Hands-on fluency with AI-powered dev tools — Claude Code, Codex, Cursor — and the judgment to know when to lean on them vs.

write it yourself.

  • Strong Python; solid grasp of modern LLM stacks (OpenAI, Anthropic, Hugging Face, LangChain / LlamaIndex or equivalents).
  • Experience with prompt engineering, fine-tuning, RAG, embeddings, and at least one vector DB (pgvector, Pinecone, Weaviate,

Qdrant).

  • Comfort with cloud (AWS / GCP / Azure), Docker, and basic MLOps — model serving, versioning, observability.
  • Bachelor's in CS, ML, or related field; bias for shipping, strong written communication, and clear thinking under ambiguity.

BONUS POINTS

  • Built or shipped AI features in Ed-Tech, data science, or analytics platforms.
  • Experience with multi-agent systems, MCP, tool-use, or evaluation frameworks (e.g., Inspect, Promptfoo, Ragas).
  • Open-source contributions, public AI projects, or technical writing on LLMs and applied ML

.

WHY JOIN US

  • Shape AI products used by millions of learners · high ownership with product & leadership · fast, learning-driven culture · competitive
  • compensation and growth.
  • Apply now and help build the future of AI-native learning

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