Agentic AI Data Scientist

National Payments Corporation of India (NPCI)

Mumbai, Navi Mumbai

On-site

INR 2,500,000 - 5,000,000

Full time

10 days ago
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Job summary

National Payments Corporation of India (NPCI) invites a Data Scientist AI Engineer to join the Market Innovation team in Mumbai. You will shape end-to-end AI systems addressing India-scale problems in fraud, risk modeling, and conversational AI.

Role emphasizes advanced ML/DL, graph AI, LLM-powered workflows, and GPU-accelerated optimization for production deployment. Collaboration with IITs/IISc and cross-functional teams is central.

Qualifications

  • Strong in supervised & unsupervised learning and statistical modeling.
  • Hands-on experience with LLMs, Graph AI, and Federated Learning beneficial.
  • Proficiency in Python, SQL, and ML frameworks.
  • Experience deploying ML models to production with GPU optimization.

Responsibilities

  • Develop and deploy ML/DL models for fraud, AML, and transaction analytics.
  • Design Graph AI models (GNN/GCN/GAT) for fraud detection and risk signals.
  • Build RAG pipelines and agentic workflows with MCP protocols.
  • Collaborate with data engineers, product teams, and researchers.

Skills

ML/DL fundamentals
GNN/Graph AI
LLMs & Generative AI
RAG pipelines
Agentic AI concepts
GPU acceleration
Python
SQL

Education

B.Tech / M.Tech / MSc / MCA (PhD preferred)

Tools

PyTorch Geometric
CUDA/RAPIDS
cuDF/cuML/cuGraph
OpenAI models

Job description

National Payment Corporation of India (NPCI) is Hiring!

Role Overview

You will be part of NPCIs Market Innovation team, working at the intersection of advanced machine learning, deep learning, graph AI, and Generative AI to build next-generation intelligent systems for Indias digital payments ecosystem.

This role focuses on solving India-scale problems such as fraud detection, mule/AML risk modeling, transaction intelligence, and conversational AI, using both classical ML and cutting-edge AI architectures (LLMs, GNNs, Transformers, Agentic AI systems).

You will design end-to-end AI systemsfrom problem formulation, feature engineering, and model development to GPU-accelerated optimization and production deployment, ensuring low latency, scalability, and robustness.

The role offers a unique opportunity to work on:

  • Graph-based fraud detection systems
  • Agentic AI & LLM-powered platforms (RAG, MCP, workflows)
  • GPU/CUDA optimized AI pipelines
  • Privacy-preserving and federated AI systems

You will collaborate with top academic institutions (IITs/IISc) and cross-functional teams to push the boundaries of applied AI in financial systems.

Job Details
  • Job Title: Data Scientist AI Engineer
  • Division: NPCI Data Analytics – Market Innovation
  • Education: B.Tech / M.Tech / MSc / MCA (PhD preferred) in CS, AI, DS, Mathematics or related field
  • Employment Type: Full-time
  • Location: Mumbai
  • Role Type: Permanent
Key Responsibilities
Machine Learning & Advanced Modeling
  • Develop and deploy ML/DL models (Logistic Regression, RF, XGBoost, NN, CNN, Transformers, GANs)
  • Build models for fraud detection, AML, anomaly detection, transaction intelligence
  • Work on imbalanced datasets using advanced sampling and cost-sensitive learning
Graph AI & Advanced Systems
  • Design Graph AI models: GNN, GCN, GAT, temporal graph networks
  • Apply network analytics for fraud rings, mule detection, behavioral risk signals
Generative AI & Agentic Systems
  • Build LLM-powered applications (chatbots, complaint intelligence, document analysis)
  • Implement:
    • RAG pipelines
    • Agentic workflows & MCP (Model Context Protocols)
    • Prompt engineering & LLM fine-tuning
Feature Engineering & Data Science
  • Perform EDA, feature engineering (temporal, behavioral, aggregated features)
  • Work with structured, semi-structured, and unstructured data
Model Optimization & GPU Acceleration
  • Optimize models for:
    • Latency & throughput
    • GPU performance (CUDA-based optimization)
  • Use libraries such as:
    • RAPIDS, cuDF, cuML, cuGraph, PyTorch Geometric
Evaluation & Experimentation
  • Design custom loss functions (weighted BCE, cost-sensitive)
  • Apply business-aligned metrics:
    • Precision@K, Recall, ROC-AUC, PR-AUC
  • Use robust validation techniques (cross-validation, time-based splits)
Deployment & Production Systems
  • Integrate models into batch and real-time production systems
  • Design scalable ML pipelines & APIs
  • Monitor:
    • Model drift
    • Performance stability
    • Business impact
Collaboration & Research
  • Work with data engineers, product teams, and business stakeholders
  • Contribute to research, innovation, and academic collaborations
  • Stay updated on latest AI advancements (LLMs, Graph AI, Federated Learning)
Required Technical Skills
Core ML & Data Science
  • Strong in:
    • Supervised & unsupervised learning
    • Statistical modeling (Logistic Regression, DA)
    • Tree models (RF, XGBoost, LightGBM)
  • Deep Learning:
    • NN, CNN, Transformers, GANs
Generative AI & LLM Stack
  • Hands-on experience with:
    • LLMs (OpenAI, open-source models)
    • Prompt engineering, fine-tuning
    • RAG pipelines & vector databases
    • Agent frameworks & MCPs
Graph AI
  • Experience with:
    • GNN, GCN, GAT
    • Graph-based fraud detection
    • Network analytics
Programming & Tools
  • Strong proficiency in:
    • Python (NumPy, Pandas, scikit-learn)
    • SQL (large-scale data processing)
  • Frameworks:
    • PyTorch / TensorFlow
    • PyTorch Geometric
Key Skills and Experience Required
  • Strong foundation in:
    • Mathematics, probability, statistics
    • Data structures & algorithms
  • Expertise in:
    • Feature engineering & model evaluation
    • Handling large-scale datasets
  • Experience with:
    • Imbalanced datasets & sampling techniques
    • Custom loss functions & business metrics
  • Knowledge of:
    • Model deployment & production pipelines
    • Model monitoring & performance tracking
  • Strong:
    • Problem-solving ability
    • Communication & stakeholder management
  • Ability to translate business problems into scalable AI systems
Good-to-Have Skills & Experience
  • Experience in:
    • Payments / fintech / banking domain
    • Fraud detection, AML, mule detection systems
  • Exposure to:
    • Graph analytics on transactional data
    • Federated learning & privacy-preserving AI
    • Real-time streaming systems
  • Experience with:
    • Cloud platforms (AWS/GCP/Azure)
    • ML pipelines & MLOps frameworks
  • Research experience:
    • Publications in ML/AI conferences or journals
  • Ability to:
    • Design AI models inspired by mathematics/physics principles
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