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Jobs / AI Engineer in India
1 month ago
Birlasoft·IT Services·1 month ago
1 month ago

Bengaluru Generative AI Sr Lead INDI

Bengaluru, IndiaSenior · 6-10 years

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About this role

Area(s) of responsibility

Job Title: GEN AI Sr Lead 
Location - Noida/HYD/Bengaluru/Pune/Chennai/Mumbai
Experience Required - 8+ years Only

  1.  Application Development: Build GenAI applications from scratch using frameworks like Autogen (applied or acquired), Crew.ai, LangGraph, LlamaIndex, and LangChain.
  2. Python Programming: Develop high-quality, efficient, and maintainable Python code for GenAI solutions.
  3. Large-Scale Data Handling & Architecture: Design and implement architectures for handling large-scale structured and unstructured data.
  4. Multi-Modal LLM Applications: Familiarity with text chat completion, vision, and speech models.
  5. Fine-tune SLM(Small Language Model) for domain specific data and use cases.
  6. Front-End Integration: Implement user interfaces using front-end technologies like React, Streamlit, and AG Grid, ensuring seamless integration with GenAI backends.
  7. Data Modernization and Transformation: Design and implement data modernization and transformation pipelines to support GenAI applications.
  8. OCR and Document Intelligence: Develop solutions for Optical Character Recognition (OCR) and document intelligence using cloud-based tools.
  9. API Integration: Use REST, SOAP, and other protocols to integrate APIs for data ingestion, processing, and output delivery.
  10. Cloud Platform Expertise: Leverage Azure, GCP, and AWS for deploying and managing GenAI applications.
  11. Fine-Tuning LLMs: Apply fine-tuning techniques such as PEFT, QLoRA, and LoRA to optimize LLMs for specific use cases.
  12. LLMOps Implementation: Set up and manage LLMOps pipelines for continuous integration, deployment, and monitoring.
  13. Responsible AI Practices: Ensure ethical AI practices are embedded in the development process.
  14. RAG and Modular RAG: Implement Retrieval-Augmented Generation (RAG) and Modular RAG architectures for enhanced model performance.
  15. Data Curation Automation: Build tools and pipelines for automated data curation and preprocessing.
  16. Technical Documentation: Create detailed technical documentation for developed applications and processes.
  17. Collaboration: Work closely with cross-functional teams, including data scientists, engineers, and product managers, to deliver high-impact solutions.

Mentorship: Guide and mentor junior developers, fostering a culture of technical excellence and innovation

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