Gen Ai Sr Technical Lead App Development

Year    MH, IN, India

Job Description

Country/Region: IN
Requisition ID: 29383
Work Model:
Position Type:
Salary Range:
Location: INDIA - PUNE - BIRLASOFT OFFICE - HINJAWADI

Title:

Gen Ai-Sr Technical Lead-App Development


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Description:

Area(s) of responsibility


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About Birlasoft:



Birlasoft, a global leader at the forefront of Cloud, AI, and Digital technologies, seamlessly blends domain expertise with enterprise solutions. The company's consultative and design-thinking approach empowers societies worldwide, enhancing the efficiency and productivity of businesses. As part of the multibillion-dollar diversified CKA Birla Group, Birlasoft with its 12,000+ professionals, is committed to continuing the Group's 170-year heritage of building sustainable communities.



Below is the JD for GenAI Technical Architect



Key Responsibilities:

1. Design and Architecture: Create scalable and modular architecture for GenAI applications using frameworks like Autogen, Crew.ai, LangGraph, LlamaIndex, and LangChain.

2. Python Development: Lead the development of Python-based GenAI applications, ensuring high-quality, maintainable, and efficient code.

3. Data Curation Automation: Build tools and pipelines for automated data curation, preprocessing, and augmentation to support LLM training and fine-tuning.

4. Cloud Integration: Design and implement solutions leveraging Azure, GCP, and AWS LLM ecosystems, ensuring seamless integration with existing cloud infrastructure.

5. Fine-Tuning Expertise: Apply advanced fine-tuning techniques such as PEFT, QLoRA, and LoRA to optimize LLM performance for specific use cases.

6. LLMOps Implementation: Establish and manage LLMOps pipelines for continuous integration, deployment, and monitoring of LLM-based applications.

7. Responsible AI: Ensure ethical AI practices by implementing Responsible AI principles, including fairness, transparency, and accountability.

8. RLHF and RAG: Implement Reinforcement Learning with Human Feedback (RLHF) and Retrieval-Augmented Generation (RAG) techniques to enhance model performance.

9. Modular RAG Design: Develop and optimize Modular RAG architectures for complex GenAI applications.

10. Open Source Collaboration: Leverage Hugging Face and other open-source platforms for model development, fine-tuning, and deployment.

Required Skills:

1. Python Programming: Deep expertise in Python for building GenAI applications and automation tools.

2. LLM Frameworks: Proficiency in frameworks like Autogen, Crew.ai, LangGraph, LlamaIndex, and LangChain.

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. Prompt injection fallback and RCE tools such as Pyrit and HAX toolkit etc.

7. Anti-hallucination and anti-gibberish tools such as Bleu etc.

8. Fine-Tuning Techniques: Mastery of PEFT, QLoRA, LoRA, and other fine-tuning methods.

9. LLMOps: Strong knowledge of LLMOps practices for model deployment, monitoring, and management.

10. Responsible AI: Expertise in implementing ethical AI practices and ensuring compliance with regulations.

11. RLHF and RAG: Advanced skills in Reinforcement Learning with Human Feedback and Retrieval-Augmented Generation.

12. Modular RAG: Deep understanding of Modular RAG architectures and their implementation.

15. Hugging Face: Proficiency in using Hugging Face and similar open-source platforms for model development.

14. Front-End Integration: Knowledge of front-end technologies to enable seamless integration of GenAI capabilities.

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Job Detail

  • Job Id
    JD4221865
  • Industry
    Not mentioned
  • Total Positions
    1
  • Job Type:
    Full Time
  • Salary:
    Not mentioned
  • Employment Status
    Permanent
  • Job Location
    MH, IN, India
  • Education
    Not mentioned
  • Experience
    Year