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  • Posted 16 days ago
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Job Description

Job Responsibilities

AI Developer — Commercial Pharma Analytics

Location: [India]

Reports to: MDM & Data Governance CoE Lead / Practice Lead

Team: AI/Agentic Engineering, Commercial Data Solutions

Role Summary

We're looking for an AI Developer to build and productionize agentic AI, LLM-based, and applied ML solutions that power commercial data platforms (MDM, data governance, HCP/HCO mastering, customer 360) for life sciences clients. This is a hands-on engineering role — you'll design, code, evaluate, and deploy AI systems, not just prototype them. Pharma domain knowledge is a plus, not a prerequisite; we'll teach you the industry context. What matters is that you can ship reliable AI products.

What You'll Do

  • Design and build LLM-powered agents (RAG pipelines, tool-using agents, multi-agent orchestration) for use cases like entity resolution, data stewardship automation, hierarchy/relationship inference, and natural-language querying over master data
  • Develop and fine-tune models (prompt engineering, fine-tuning, embeddings, evaluation harnesses) and integrate them into production pipelines
  • Build robust evaluation frameworks — accuracy, hallucination rate, latency, cost — and iterate against them
  • Own the full lifecycle: architecture, coding, testing, deployment, monitoring, and versioning of AI components
  • Integrate AI services with enterprise data platforms (Informatica IDMC, Reltio, Databricks, Snowflake, etc.) via APIs and MCP-style tool connectors
  • Collaborate with solution architects and delivery leads to translate client requirements (e.g., HCP affiliation logic, consent management, account hierarchy) into AI-driven technical designs
  • Build internal accelerators/reusable agent frameworks that can be deployed across multiple client engagements
  • Contribute to technical proposals and PoCs during pre-sales when needed

Must-Have Technical Skills

  • Strong Python engineering skills (not just notebooks — production code, testing, packaging)
  • Hands-on experience with LLM APIs (OpenAI, Anthropic, etc.) and orchestration frameworks (LangChain, LangGraph, LlamaIndex, or equivalent)
  • Practical experience building RAG systems: chunking strategies, vector databases (Pinecone, Weaviate, pgvector, etc.), retrieval evaluation
  • Understanding of agentic architectures: tool calling, function calling, multi-step planning, memory/state management
  • Experience with prompt engineering and systematic prompt evaluation (not trial-and-error)
  • Familiarity with model fine-tuning and/or embedding model selection/tuning
  • API development (REST, sometimes MCP) and integration with third-party/enterprise systems
  • Comfortable with cloud platforms (Azure/AWS/GCP) and basic MLOps (CI/CD for models, monitoring, logging)
  • SQL and experience working with structured/semi-structured enterprise data

Nice-to-Have

  • Exposure to master data management concepts (match/merge, golden records, survivorship) — will be trained if not present
  • Experience with Databricks, Snowflake, or similar data platforms
  • Familiarity with life sciences/pharma commercial data (HCP/HCO, territory, consent) — helpful but not required
  • Experience building internal tools/accelerators reused across projects
  • Contributions to open-source AI tooling

Education

BE/B.Tech

Master of Computer Application

Behavioural Competencies

Ownership

Teamwork & Leadership

Cultural Fit

Motivation to Learn and Grow

Technical Competencies

Problem Solving

Lifescience Knowledge

Communication

Capability Building / Thought Leadership

More Info

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About Company

Job ID: 151135697

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