DEQ - Senior - AIML

Reposted One Month Ago
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Bangalore, Bengaluru Urban, Karnataka, IND
In-Office
50K-100K Annually
Senior level
Fintech • Professional Services • Software • Financial Services
The Role
The role involves developing GenAI applications, implementing RAG architectures, designing agentic systems, and ensuring integration with cloud ML operations.
Summary Generated by Built In

About KPMG in India

KPMG entities in India are professional services firm(s). These Indian member firms are affiliated with KPMG International Limited. KPMG was established in India in August 1993. Our professionals leverage the global network of firms, and are conversant with local laws, regulations, markets and competition. KPMG has offices across India in Ahmedabad, Bengaluru, Chandigarh, Chennai, Gurugram, Jaipur, Hyderabad, Jaipur, Kochi, Kolkata, Mumbai, Noida, Pune, Vadodara and Vijayawada. 

KPMG entities in India offer services to national and international clients in India across sectors. We strive to provide rapid, performance-based, industry-focused and technology-enabled services, which reflect a shared knowledge of global and local industries and our experience of the Indian business environment.

Overview
This role demand strong GenAI experience, emerging mastery in Agentic AI Systems, and a good foundation in classical ML.
You will design and build intelligent, tool-using agents, multi-agent systems, RAG pipelines, and LLM-based applications leveraging the LangChain , LangGraph ecosystem, LangSmith for evaluation.
________________________________________
Key Responsibilities
1. GenAI / LLM Application Development
• Build GenAI applications using: 
o LangChain, LangGraph
• Implement RAG architectures with: 
o Retrieval, reranking, chunking, memory strategies
o Vector DBs (faiss, aisearch, opensearch, PG vector etc).
• Design prompt-engineering strategies: 
o Instruction-following
o ReAct (Reasoning + Acting)
o Chain-of-thought structuring
o Self-reflection and planning loops
• Evaluation Strategy
o Implement evaluation frameworks for Classical ML and GenAI systems, covering statistical validation, reliability, and robustness. 
o Assess LLM outputs, RAG pipelines, and agent workflows for grounding quality, relevance, and retrieval accuracy (e.g., recall@k, precision@k). 
o Use LangSmith for tracing, automated evaluations, regression testing, and continuous system level quality monitoring
2. Agentic System Architecture
• Build agentic workflows: 
o Tool-calling agents
o Planner–executor systems
o Multi-agent communication systems
o Hierarchical agent architectures
o Deep Agents
• Integrate memory systems: 
o episodic memory
o semantic memory
o vector-based long-term knowledge
• Implement evaluation frameworks for agentic systems using LangSmith.
3. Model Context Protocol (MCP) & Tooling
• Implement MCP servers for external tool connectivity.
• Build tools that allow agents to interact with: 
o APIs
o Code execution environments
o Knowledge bases
o Company applications
4. Classical ML (Foundational DS Skills)
• Apply ML models to structured/unstructured data.
• Conduct feature engineering, model selection, hyperparameter tuning.
• Build interpretable models where required.
5. Engineering & Integration
• Collaborate with backend engineering teams to seamlessly integrate agentic and GenAI systems into production applications.
• Implement observability, tracing, and monitoring for GenAI workflows using LangSmith to ensure reliability and system‑level transparency.
6. Cloud ML-Ops & Quality
• ML Modelling, data drift, concept drift, model quality monitoring.
• Hands‑on experience across AWS/ Azure/ Databricks, with flexibility to work on any cloud platform.
• Adhere to stringent quality assurance and documentation standards using version control and code repositories (e.g., Git, GitHub, Markdown)

________________________________________
Required Skills & Experience
• 5–10 years total experience, with 2–4+ years hands-on GenAI.
• Hands-on expertise with: 
o LangChain, LangGraph
o LangSmith (tracing, metrics, evaluations)
o MCP tooling and agent tool integration
o ReAct, Tree of Thoughts, multi-agent orchestration
o RAG patterns and vector databases
• Strong coding expertise in Python.
• Classical ML foundations (tree models, regression, etc.).
• Experience working with LLM APIs and/or open-source LLMs.
• Experience building and debugging production-quality GenAI pipelines.
• Aws/azure
• GIT Ops 
• Prior experience building complex multi-agent systems for real-world applications.
• Knowledge of multi-modal LLMs (vision, speech, code).
• Familiarity with structured evaluation of LLM systems (hallucination tests, safety assessments etc ).
• Experience in enterprise-grade LLM deployments.

Equal employment opportunity information 


KPMG India has a policy of providing equal opportunity for all applicants and employees regardless of their color, caste, religion, age, sex/gender, national origin, citizenship, sexual orientation, gender identity or expression, disability or other legally protected status. KPMG India values diversity and we request you to submit the details below to support us in our endeavor for diversity. Providing the below information is voluntary and refusal to submit such information will not be prejudicial to you.
QualificationsBTech

Skills Required

  • 5-10 years total experience
  • 2-4+ years hands-on GenAI experience
  • Strong coding expertise in Python
  • Hands-on expertise with LangChain, LangGraph, and LangSmith
  • Experience in enterprise-grade LLM deployments
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The Company
HQ: New York, NY
30,867 Employees

What We Do

KPMG entities in India are established under the laws of India and are owned and managed (as the case may be) by established Indian professionals. Established in September 1993, the KPMG entities have rapidly built a significant competitive presence in the country. Today we operate from offices across 14 cities including in Ahmedabad, Bengaluru, Chandigarh, Chennai, Gurugram, Hyderabad, Jaipur, Kochi, Kolkata, Mumbai, Noida, Pune, Vadodara and Vijayawada. KPMG entities have a domestic client base of over 2700 companies. Our global approach to service delivery helps provide value-added services to clients. Our differentiation is derived from a rapid performance-based, industry-tailored and technology-enabled business advisory services delivered by some of the leading talented professionals in the country. KPMG professionals are grouped by industry focus and our clients are able to deal with industry professionals who speak their language. Our internal information technology and knowledge management systems enable the delivery of informed and timely business advice to clients.

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