Principal AI/Data Science Engineer
National Payments Corporation of India
All India, Hyderabad • 1 month ago
Experience: 11 to 15 Yrs
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Job Description
As a Senior Data Scientist (AI/ML Systems) at National Payment Corporation of India (NPCI), you will play a crucial role in designing and deploying next-generation AI and data science systems to drive India's digital payments ecosystem at a population scale. Your responsibilities will go beyond traditional modeling, requiring expertise in building end-to-end AI/ML pipelines, production-grade platforms, and scalable distributed systems. This is an opportunity to lead high-impact initiatives and build AI systems with high performance, low latency, and reliability at a national scale.
**Key Responsibilities:**
- Design, develop, and deploy production-grade machine learning and deep learning systems using TensorFlow, PyTorch, and Keras.
- Build and operationalize supervised and unsupervised learning models, covering classical statistical models, tree-based methods, neural networks, and advanced DL architectures.
- Architect and optimize end-to-end ML pipelines including data ingestion, feature engineering, training, serving, scaling, and monitoring.
- Work with big data ecosystems and distributed computing technologies to handle large datasets at high throughput.
- Design systems for high availability, ultra-low latency, observability, and fault tolerance.
**MLOps & Deployment:**
- Implement CI/CD pipelines for ML workflows.
- Utilize Docker, Kubernetes, container orchestration, GPU clusters, and scalable microservice architectures.
- Integrate platform components such as MinIO, Trino, Feature Stores, and distributed caching.
**Advanced AI & LLMs:**
- Apply LLMs, transformer models, and agentic AI systems where relevant.
- Explore federated AI architectures for privacy-preserving ML.
**Technical Leadership & Collaboration:**
- Mentor data scientists and ML engineers; lead architectural decisions and code reviews.
- Collaborate with Product, Engineering, Business, and Operations teams to deliver enterprise AI solutions.
- Ensure alignment with audit, compliance, and regulatory expectations.
- Contribute to NPCI's thought leadership through white papers, conference presentations, and technical publications.
**Qualifications Required:**
- Strong foundations in Machine Learning, Deep Learning, Statistics, and Bayesian methods.
- Expert-level proficiency in Python and strong command of SQL.
- Hands-on experience with TensorFlow, PyTorch, and GPU-accelerated computing (CUDA, NVIDIA stack).
- Practical understanding of feature store architectures and ML observability frameworks.
- Strong knowledge of Kubernetes, Docker, CI/CD for ML, MinIO, Trino/Presto, Object Storage, Data Lakes, Model serving, monitoring, and drift detection.
- Experience designing ML systems optimized for scalability, latency, fault tolerance, performance tuning, and resource management.
- Exposure to federated learning, distributed model training, and agentic AI.
- Excellent problem-solving, analytical thinking, and communication skills.
- Ability to translate ambiguous business problems into scalable AI-driven solutions.
- Experience in stakeholder management and cross-functional leadership.
**Good-to-Have Skills:**
- Exposure to digital payments, banking, finance, or regulated environments.
- Experience with Operations Research tools (Google OR, IBM ILOG).
- Published research, white papers, patents, or conference presentations. As a Senior Data Scientist (AI/ML Systems) at National Payment Corporation of India (NPCI), you will play a crucial role in designing and deploying next-generation AI and data science systems to drive India's digital payments ecosystem at a population scale. Your responsibilities will go beyond traditional modeling, requiring expertise in building end-to-end AI/ML pipelines, production-grade platforms, and scalable distributed systems. This is an opportunity to lead high-impact initiatives and build AI systems with high performance, low latency, and reliability at a national scale.
**Key Responsibilities:**
- Design, develop, and deploy production-grade machine learning and deep learning systems using TensorFlow, PyTorch, and Keras.
- Build and operationalize supervised and unsupervised learning models, covering classical statistical models, tree-based methods, neural networks, and advanced DL architectures.
- Architect and optimize end-to-end ML pipelines including data ingestion, feature engineering, training, serving, scaling, and monitoring.
- Work with big data ecosystems and distributed computing technologies to handle large datasets at high throughput.
- Design systems for high availability, ultra-low latency, observability, and fault tolerance.
**MLOps & Deployment:**
- Implement CI/CD pipelines for ML workflows.
- Utilize Docker, Kubernetes, container orchestration, GPU clusters, and scalable microservice architectures.
- Integrate platform components such as MinIO, Trino, Feature Stores, and distributed caching.
**Advanced AI & LLMs:**
- Apply LLMs, transformer models, and agentic AI syst
Skills Required
Machine Learning
Deep Learning
Statistics
Bayesian methods
Python
SQL
Kubernetes
Docker
Monitoring
Communication skills
Stakeholder management
TensorFlow
PyTorch
GPUaccelerated computing
CICD for ML
MinIO
TrinoPresto
Object Storage
Data Lakes
Model serving
Drift detection
Federated learning
Distributed model training
Agentic AI
Problemsolving
Analytical thinking
Crossfunctional leadership
Posted on: March 9, 2026
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