Manager - BIM

8 - 13 years

13 - 18 Lacs

Posted:11 hours ago| Platform: Naukri logo

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Job Description


 Position Summary 
 Highly skilled GenAI Application Leads with 8 to 15 years of total experience  who can lead the design, development, testing, and deployment of Generative AI–based applications  focused on Data and Analytics in Life Sciences domain . The ideal candidate will have a strong background in Python, RAG, knowledge graphs, Gen AI/LLM frameworks (LangChain, LangGraph), AWS/Azure cloud services with hands-on experience integrating and fine-tuning GPT, Anthropic Claude, Mistral, or Snowflake Cortex for real-world business use cases. Strong client problem-solving skills across life sciences data and analytics is a plus.
This role bridges AI engineering, data analytics, and full-stack development, creating intelligent applications that augment data-driven decision-making. Job Responsibilities 
  •  Solution Architecture & Design 
  • Lead the  end-to-end architecture and design  of Generative AI applications
  • Define solution blueprints combining LLMs, Retrieval-Augmented Generation  (RAG),  Knowledge Graphs for  structured and unstructured data sources. 
  • Translate business requirements into  modular AI workflows , ensuring scalability, security, and performance.
  • Evaluate and recommend  GenAI frameworks/tools (LangChain, LangGraph, Semantic Kernel, etc.) 
  • Collaborate with data engineers and pharma domain experts to design semantic data models and  context-aware knowledge base .
  •  Gen AI Application Development & Engineering 
  •  Lead full-stack design and development using Python  ( FastAPI , Flask) and  React /Next.js for GenAI-powered frontends.
  •  Build microservices or API layers  that expose AI functionalities securely across teams and systems.
  • Ensure robust CI/CD pipelines, version control (GitHub, Bitbucket, GitLab), and containerization (Docker, Kubernetes).
  • Design and develop user-centric applications that embed GenAI outputs seamlessly into custom UI or enterprise BI tools like Power BI
  • Work with data engineering and analytics teams to  connect GenAI apps to existing data ecosystems  (AWS S3, Azure Data Lake, Snowflake, Databricks, etc.)
  • Use  knowledge graphs and metadata-driven approaches  to enhance contextual reasoning and data discovery
  • Deploy AI workloads using  Azure OpenAI,  AWS Sagemaker, Bedrock, or  Snowflake Cortex AI Services .
  •  AI Model Integration & Fine-tuning 
  • Lead the integration of LLMs (OpenAI GPT, Anthropic Claude, Mistral, Snowflake Cortex, etc.) into enterprise-grade applications.
  • Fine-tune or prompt-tune foundation models using domain-specific data (commercial, patient, Omni -channel, clinical, or market access data).
  • Design and implement RAG architectures leveraging vector databases (ChromaDB, Pinecone, FAISS, Weaviate etc.).
  • Develop prompt engineering frameworks and guardrails to ensure factuality, interpretability, and compliance.
  • Establish evaluation pipelines for model performance, accuracy, latency, and hallucination detection.
  •  Leadership & Collaboration  
  • Lead a cross-functional GenAI development team of engineers, business analysts, data scientists, and UI developers.
  • Stay ahead of the curve with emerging LLM architectures, multi-agent systems, and reasoning frameworks to provide technical guidance to the teams.
  • Drive  knowledge-sharing sessions and PoCs   to evangelize Generative AI adoption  across the organization.
  • Contribute to Gen AI use case roadmaps, thought leadership relevant to GenAI in Life Sciences.

  •    
     Education 
    BE/B.TechMaster of Computer Application Work Experience 
     Highly skilled GenAI Application Leads with 8 to 15 years of total experience  who can lead the design, development, testing, and deployment of Generative AI–based applications  focused on Data and Analytics in Life Sciences domain . The ideal candidate will have a strong background in Python, RAG, knowledge graphs, Gen AI/LLM frameworks (LangChain, LangGraph), AWS/Azure cloud services with hands-on experience integrating and fine-tuning GPT, Anthropic Claude, Mistral, or Snowflake Cortex for real-world business use cases. Strong client problem-solving skills across life sciences data and analytics is a plus.
     Behavioural Competencies 
    Teamwork & LeadershipMotivation to Learn and GrowOwnershipCultural FitTalent Management Technical Competencies 
    Problem SolvingLifescience KnowledgeCommunicationProject ManagementCapability Building / Thought LeadershipAIMLPythonReactAzure ML StudioAWS CodeBuildML Data Science Skills 
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