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AI / ML

Associate Consultant / Consultant - AI Engineering & Generative AI Solutions

KPMG India

1–6 yrsOn-site · Mumbai, Maharashtra, IndiaFull-timeListed 1d ago
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Experience 1–3 yrs (1–6 years)

About the role

structured by ORI

Location: Mumbai, India Experience: 1-6 Years Grade: Associate Consultant / Consultant About the Role We are looking for highly skilled AI Engineers and Consultants with strong expertise in Generative AI, Agentic AI, Retrieval-Augmented Generation (RAG), Machine Learning, and Python development. The ideal candidate…

What you will do

  • Design, develop, and deploy end-to-end AI applications by integrating LLMs, APIs, enterprise data sources, and user interfaces.
  • Build scalable and production-ready solutions leveraging Generative AI, Agentic AI, RAG, GraphRAG, and foundation models.
  • Implement robust evaluation frameworks to assess model performance, response quality, accuracy, and business impact.
  • Build and maintain scalable data ingestion and ETL pipelines.
  • Create and maintain technical documentation, architecture diagrams, deployment guides, and operational runbooks.

What they are looking for

  • Strong hands-on programming experience in Python.
  • Experience with: Pandas, Polars, PyTorch, LangChain, LangGraph, FastAPI, Streamlit.
  • Ability to build modular, scalable, maintainable, and production-grade AI applications.
  • Strong experience with: Retrieval-Augmented Generation (RAG), GraphRAG, Agentic AI frameworks, Vector databases and semantic search.
  • Experience working with: TabPFN or similar tabular foundation models, TimesFM or similar time-series foundation models.
  • Experience reviewing, modifying, and deploying open-source LLM and OCR codebases.
  • Strong understanding of: Quantization, Model compression, Memory optimization, Inference acceleration, Resource-constrained deployments.
  • Experience deploying models within secure and on-premises enterprise environments.

Nice to have

  • Prompt engineering and LLM evaluation techniques.
  • Experience with OCR and document intelligence solutions.
  • Knowledge of AI application monitoring and model observability.
  • Understanding of vector databases such as FAISS, ChromaDB, Pinecone, or Milvus.
  • Familiarity with Docker, Kubernetes, CI/CD pipelines, and cloud platforms.
  • Experience working in Risk, Treasury, Banking, or Financial Services domains.
  • Ability to interpret and implement cutting-edge AI research into practical business solutions.
Generative AIAgentic AIRetrieval-Augmented Generation (RAG)GraphRAGMachine LearningPythonPrompt engineeringOCRPandasPolarsPyTorchLangChainLangGraphFastAPIStreamlitBeautifulSoup (BS4)
Full posting text

Location: Mumbai, India

Experience: 1-6 Years

Grade: Associate Consultant / Consultant

About the Role

We are looking for highly skilled AI Engineers and Consultants with strong expertise in Generative AI, Agentic AI, Retrieval-Augmented Generation (RAG), Machine Learning, and Python development. The ideal candidate will play a key role in designing, building, and deploying enterprise-scale AI solutions focused on Risk, Treasury, and business transformation initiatives.

This role requires hands-on experience in developing production-ready AI applications, integrating open-source foundation models, optimizing AI workloads for secure on-premises environments, and driving innovation through emerging AI technologies.

Key Responsibilities

AI Solution Development

Design, develop, and deploy end-to-end AI applications by integrating LLMs, APIs, enterprise data sources, and user interfaces.

Build scalable and production-ready solutions leveraging Generative AI, Agentic AI, RAG, GraphRAG, and foundation models.

Develop AI-powered applications for forecasting, information retrieval, document intelligence, and process automation.

Implement robust evaluation frameworks to assess model performance, response quality, accuracy, and business impact.

Generative AI & Agentic Workflows

Design and implement intelligent agent-based workflows using frameworks such as LangChain and LangGraph.

Develop Retrieval-Augmented Generation (RAG) and GraphRAG solutions for enterprise knowledge management and decision support.

Create prompt engineering strategies to improve solution performance, reliability, and user experience.

Optimize AI agents for complex reasoning, workflow orchestration, and autonomous task execution.

Model Engineering & Optimization

Customize and optimize open-source LLMs, OCR, and document intelligence models for enterprise deployment.

Adapt GPU-centric AI models to CPU-constrained and secure on-premises environments.

Implement techniques such as:

Quantization

Model compression

Memory optimization

Batching

Caching

Performance tuning

Evaluate emerging AI architectures, foundation models, and open-source solutions.

Data Engineering & Integration

Build and maintain scalable data ingestion and ETL pipelines.

Integrate structured and unstructured data from internal and external sources using APIs, web scraping, and automation frameworks.

Utilize tools such as BeautifulSoup (BS4), Selenium, and REST APIs for data acquisition and enrichment.

Ensure data quality, governance, and efficient data processing for AI applications.

Research & Innovation

Analyze research papers, technical publications, and open-source repositories to identify emerging AI capabilities.

Prototype and evaluate new LLMs, OCR technologies, document intelligence platforms, and foundation models.

Recommend innovative solutions to address business and technical challenges.

Documentation & Governance

Create and maintain technical documentation, architecture diagrams, deployment guides, and operational runbooks.

Support solution reviews, code quality assessments, and production readiness activities.

Ensure compliance with enterprise security, governance, and deployment standards.

Mandatory Requirements

Programming & AI Development

Strong hands-on programming experience in Python .

Experience with:

Pandas

Polars

PyTorch

LangChain

LangGraph

FastAPI

Streamlit

Ability to build modular, scalable, maintainable, and production-grade AI applications.

Generative AI & Foundation Models

Strong experience with:

Retrieval-Augmented Generation (RAG)

GraphRAG

Agentic AI frameworks

Vector databases and semantic search

Experience working with:

TabPFN or similar tabular foundation models

TimesFM or similar time-series foundation models

Model Optimization

Experience reviewing, modifying, and deploying open-source LLM and OCR codebases.

Strong understanding of:

Quantization

Model compression

Memory optimization

Inference acceleration

Resource-constrained deployments

Experience deploying models within secure and on-premises enterprise environments.

Preferred Skills

Prompt engineering and LLM evaluation techniques.

Experience with OCR and document intelligence solutions.

Knowledge of AI application monitoring and model observability.

Understanding of vector databases such as FAISS, ChromaDB, Pinecone, or Milvus.

Familiarity with Docker, Kubernetes, CI/CD pipelines, and cloud platforms.

Experience working in Risk, Treasury, Banking, or Financial Services domains.

Ability to interpret and implement cutting-edge AI research into practical business solutions.

Seniority level: Entry level

Employment type: Full-time

Industries: Business Consulting and Services

Business Consulting and Services
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