GEN AI Developer

Birlasoft

Pune District

On-site

INR 1,500,000 - 2,100,000

Full time

34 hours ago
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Job summary

Birlasoft in Pune district, India seeks a GEN AI Developer with 4–6 years of experience to design and implement GenAI applications. You will work on multi-modal models, data pipelines, and LLM fine-tuning with modern frameworks, ensuring scalable production readiness.

Role involves building interfaces, integrating front-end technologies, and ensuring responsible AI practices across projects, with immediate availability desired.

Qualifications

  • Deep expertise in Python for GenAI applications and automation.
  • Experience building GenAI apps from scratch using modern frameworks.
  • Designing architectures for large-scale structured and unstructured data.

Responsibilities

  • Build GenAI applications from scratch using frameworks like Autogen, Crew.ai, LangGraph, LlamaIndex, and LangChain.
  • Develop high-quality, efficient Python code for GenAI solutions.
  • Design architectures for handling large-scale data.
  • Familiarity with text chat, vision, and speech models.
  • Fine-tune small language models for domain data.
  • Create user interfaces with React/Streamlit for GenAI backends.
  • Build data modernization pipelines for GenAI apps.
  • Apply PEFT/QLoRA/LoRA for tuning LLMs.
  • Set up LLMOps CI/CD and monitoring pipelines.
  • Embed Responsible AI practices in development.

Skills

Python Programming
GenAI development
LLM Frameworks
Front-End integration
Large-scale data architecture
Multimodal LLM applications
Fine-tuning LLMs
LLMOps pipelines
Responsible AI practices
API integration
Front-end technologies
OCR and document intelligence

Tools

Autogen
Crew.ai
LangGraph
LlamaIndex
LangChain
Pylint
Pyrit
HAX toolkit
Bleu
Streamlit
React
AG Grid
Azure
GCP
AWS

Job description

  • Application Development: Build GenAI applications from scratch using frameworks like Autogen (applied or acquired), Crew.ai, LangGraph, LlamaIndex, and LangChain.
  • Python Programming: Develop high-quality, efficient, and maintainable Python code for GenAI solutions.
  • Large-Scale Data Handling & Architecture: Design and implement architectures for handling large-scale structured and unstructured data.
  • Multi-Modal LLM Applications: Familiarity with text chat completion, vision, and speech models.
  • Fine-tune SLM(Small Language Model) for domain specific data and use cases.
  • Front-End Integration: Implement user interfaces using front-end technologies like React, Streamlit, and AG Grid, ensuring seamless integration with GenAI backends.
  • Data Modernization and Transformation: Design and implement data modernization and transformation pipelines to support GenAI applications.
  • Fine-Tuning LLMs: Apply fine-tuning techniques such as PEFT, QLoRA, and LoRA to optimize LLMs for specific use cases.
  • LLMOps Implementation: Set up and manage LLMOps pipelines for continuous integration, deployment, and monitoring.
  • Responsible AI Practices: Ensure ethical AI practices are embedded in the development process.
Long Description

Role - GEN AI Developer

Exp - 4-6 years

NP - Imemdiate Only

Key Responsibilities
  • Application Development: Build GenAI applications from scratch using frameworks like Autogen (applied or acquired), Crew.ai, LangGraph, LlamaIndex, and LangChain.
  • Python Programming: Develop high-quality, efficient, and maintainable Python code for GenAI solutions.
  • Large-Scale Data Handling & Architecture: Design and implement architectures for handling large-scale structured and unstructured data.
  • Multi-Modal LLM Applications: Familiarity with text chat completion, vision, and speech models.
  • Fine-tune SLM(Small Language Model) for domain specific data and use cases.
  • Front-End Integration: Implement user interfaces using front-end technologies like React, Streamlit, and AG Grid, ensuring seamless integration with GenAI backends.
  • Data Modernization and Transformation: Design and implement data modernization and transformation pipelines to support GenAI applications.
  • Fine-Tuning LLMs: Apply fine-tuning techniques such as PEFT, QLoRA, and LoRA to optimize LLMs for specific use cases.
  • LLMOps Implementation: Set up and manage LLMOps pipelines for continuous integration, deployment, and monitoring.
  • Responsible AI Practices: Ensure ethical AI practices are embedded in the development process.
Required Skills
  • Python Programming: Deep expertise in Python for building GenAI applications and automation tools.
  • Productionization of GenAI application beyond PoCs – Using scale frameworks and tools such as Pylint,Pyrit etc.
  • LLM Frameworks: Proficiency in frameworks like Autogen, Crew.ai, LangGraph, LlamaIndex, and LangChain.
  • Large-Scale Data Handling & Architecture: Design and implement architectures for handling large-scale structured and unstructured data.
  • Multi-Modal LLM Applications: Familiarity with text chat completion, vision, and speech models.
  • Fine-tune SLM(Small Language Model) for domain specific data and use cases.
  • Prompt injection fallback and RCE tools such as Pyrit and HAX toolkit etc.
  • Anti-hallucination and anti-gibberish tools such as Bleu etc.
  • Front-End Technologies: Strong knowledge of React, Streamlit, AG Grid, and JavaScript for front-end development.
  • Cloud Platforms: Extensive experience with Azure, GCP, and AWS for deploying and managing GenAI applications. (any two cloud exp.)
  • Fine-Tuning Techniques: Mastery of PEFT, QLoRA, LoRA, and other fine-tuning methods. (any one is fine)
  • LLMOps: Strong knowledge of LLMOps practices for model deployment, monitoring, and management.
  • Responsible AI: Expertise in implementing ethical AI practices and ensuring compliance with regulations.
  • RAG and Modular RAG: Advanced skills in Retrieval-Augmented Generation and Modular RAG architectures.
  • Data Modernization: Expertise in modernizing and transforming data for GenAI applications.
  • OCR and Document Intelligence: Proficiency in OCR and document intelligence using cloud-based tools.
  • API Integration: Experience with REST, SOAP, and other protocols for API integration.
  • Data Curation: Expertise in building automated data curation and preprocessing pipelines.
  • Technical Documentation: Ability to create clear and comprehensive technical documentation.
  • Collaboration and Communication: Strong collaboration and communication skills to work effectively with cross‑functional teams.
  • innovation.

Target Companies – Quantiphi,Datastax,Coforge,HCL,Accenture,Fractal.

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