Sr Data Scientist AI Engineering

Trinity Life Sciences

Bengaluru Urban

On-site

INR 4,000,000 - 7,000,000

Full time

5 days ago
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Job summary

Trinity Life Sciences in Bengaluru, India, seeks a GenAI Architect to design enterprise AI pipelines and scalable GenAI platforms. You will lead RAG architectures, prompt orchestration, and production-grade microservices, collaborating with data, ML, and software teams to deliver robust GenAI solutions.

You will evaluate LLMs, manage model lifecycles, and optimize costs while aligning with governance standards in a regulated enterprise context.

Qualifications

  • Bachelor’s or Master’s in Computer Science, AI, Data Engineering, or related field.
  • 5–8 years total experience, 3+ years in AI/ML or NLP systems design.
  • Proven experience implementing LLM-based solutions, RAG architectures, and prompt orchestration frameworks.
  • Strong Python programming skills and familiarity with LangChain, LangGraph, LlamaIndex, or Transformers.
  • Hands-on knowledge of vector databases and knowledge graph systems.
  • Experience deploying and managing AI workloads on cloud platforms (GCP, Azure, AWS).
  • Understanding of MLOps/GenAIOps, model evaluation, and observability practices.

Responsibilities

  • Architect and implement RAG pipelines, agentic AI systems, and LLM-driven applications for enterprise use cases.
  • Design and integrate prompt engineering, context management, and knowledge-grounding frameworks to optimize LLM performance.
  • Collaborate with data, ML, and software engineering teams to build production-grade GenAI microservices and APIs.
  • Evaluate and integrate open‑source and proprietary LLMs (e.g., OpenAI, Anthropic, Mistral, Llama, Gemini).
  • Design data pipelines for unstructured/structured content ingestion, indexing, and vector retrieval using Milvus, PostgreSQL (pgvector), or similar technologies.
  • Define and enforce architecture standards, governance, and best practices for scalable GenAI platforms.
  • Conduct PoCs, benchmark model performance, and lead solution transitions from prototype to production.
  • Contribute to AI strategy, model lifecycle management, and cost optimization initiatives.

Skills

Python
LangChain
LangGraph
LlamaIndex
Transformers
Milvus
Pinecone
Weaviate
Neo4j
GCP/AWS/Azure

Education

Bachelor’s/Master’s degree in CS/AI/Data Eng

Tools

PostgreSQL pgvector
Milvus
Pinecone
Weaviate
Chroma
Neo4j
RDF
GCP/AWS/Azure

Job description

Job Description

We're committed to bringing passion and customer focus to the business.

Key Responsibilities
  • Architect and implement RAG pipelines, agentic AI systems, and LLM-driven applications for enterprise use cases.
  • Design and integrate prompt engineering, context management, and knowledge-grounding frameworks to optimize LLM performance.
  • Collaborate with data, ML, and software engineering teams to build production-grade GenAI microservices and APIs.
  • Evaluate and integrate open‑source and proprietary LLMs (e.g., OpenAI, Anthropic, Mistral, Llama, Gemini).
  • Design data pipelines for unstructured/structured content ingestion, indexing, and vector retrieval using Milvus, PostgreSQL (pgvector), or similar technologies.
  • Define and enforce architecture standards, governance, and best practices for scalable GenAI platforms.
  • Conduct PoCs, benchmark model performance, and lead solution transitions from prototype to production.
  • Contribute to AI strategy, model lifecycle management, and cost optimization initiatives.
Required Skills And Qualifications
  • Bachelor’s/Master’s degree in Computer Science, AI, Data Engineering, or related field.
  • 5–8 years of total experience, with at least 3+ years in AI/ML or NLP systems design.
  • Proven experience implementing LLM-based solutions, RAG architectures, and prompt orchestration frameworks.
  • Strong Python programming skills and familiarity with frameworks like LangChain, LangGraph, LlamaIndex, or Transformers.
  • Hands‑on knowledge of vector databases (Milvus, Pinecone, Weaviate, Chroma) and knowledge graph systems (Neo4j, RDF).
  • Experience deploying and managing AI workloads on cloud platforms (GCP, Azure, AWS).
  • Understanding of MLOps/GenAIOps, model evaluation, and observability practices.
  • Strong problem-solving, communication, and stakeholder management capabilities.
Preferred Skills
  • Experience with multimodal LLMs, agentic reasoning, and tool‑using AI agents.
  • Exposure to pharma/life sciences or regulated enterprise domains.
  • Contribution to open‑source AI frameworks or internal AI accelerators.
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