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Lead Data Scientist - Generative AI

Savishty
9 - 13 Years
Gurgaon/Gurugram

Posted on: 25/03/2026

Job Description

Description :

Lead Data Scientist (Generative AI / LLM)

Role Summary

We are looking for a Lead Data Scientist with strong hands-on expertise in Generative AI and Large Language Models (LLMs) to design and build scalable AI-driven solutions. The ideal candidate will combine deep technical proficiency with leadership capability, actively contributing to coding, model development, and solution architecture.

This role requires someone who can develop production-grade AI applications, lead technical initiatives, and collaborate closely with cross-functional teams to translate complex business problems into impactful AI solutions.

Key Responsibilities :

AI Solution Development :

- Design and develop AI/ML solutions leveraging Large Language Models (LLMs) and modern Generative AI frameworks.

- Build and deploy LLM-powered applications, such as conversational AI systems, intelligent assistants, and enterprise knowledge tools.

- Architect Retrieval Augmented Generation (RAG) frameworks integrating enterprise data with LLMs.

Hands-on Engineering :

- Write high-quality, production-ready code using Python and modern AI/ML libraries.

- Develop and optimize prompt engineering strategies, LLM workflows, and agent-based systems.

- Build applications using frameworks such as LangChain, LlamaIndex, or similar orchestration tools.

- Implement vector search pipelines and semantic retrieval systems.

AI Architecture & Deployment :

- Design end-to-end AI architectures integrating data pipelines, vector databases, and LLM services.

- Build scalable pipelines for model deployment, monitoring, and lifecycle management.

- Integrate AI models with enterprise platforms, APIs, and data ecosystems.

Technical Leadership :

- Lead and mentor a team of data scientists and AI engineers.

- Establish best practices for model development, experimentation, and code quality.

- Provide technical guidance on architecture decisions and AI solution design.

Stakeholder Collaboration :

- Partner with product teams, engineering teams, and business stakeholders to identify and prioritize AI opportunities.

- Translate business requirements into scalable AI solutions and technical roadmaps.

- Communicate technical concepts and results effectively to leadership and cross-functional teams.


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