Senior AI Data Engineer

Posted 8 Hours Ago
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Pune, Maharashtra, IND
Hybrid
Senior level
Blockchain • Fintech • Payments • Consulting • Cryptocurrency • Cybersecurity • Quantum Computing
We are a global technology company in the payments industry.
The Role
Lead the design and development of scalable cloud-native data platforms and batch or real-time pipelines supporting AI, machine learning, and Generative AI. Build infrastructure for feature engineering, model training, inference, LLMs, RAG, embeddings, and vector databases. Ensure data quality, governance, security, observability, reliability, and cost efficiency while enabling MLOps and AgenticOps capabilities across enterprise AI initiatives.
Summary Generated by Built In
Our Purpose
Mastercard powers economies and empowers people in 200+ countries and territories worldwide. Together with our customers, we're helping build a sustainable economy where everyone can prosper. We support a wide range of digital payments choices, making transactions secure, simple, smart and accessible. Our technology and innovation, partnerships and networks combine to deliver a unique set of products and services that help people, businesses and governments realize their greatest potential.
Title and Summary
Senior AI Data Engineer
Overview
As a Senior AI Data Engineer within Mastercard's AI Center of Excellence, you will lead the design, development, and optimization of enterprise data platforms and pipelines that enable scalable AI, machine learning, and Generative AI solutions. You will be responsible for building production-grade data infrastructure that supports the complete AI lifecycle, including data ingestion, feature engineering, model training, inference, and continuous improvement
Working closely with AI Engineers, Data Scientists, Platform Engineers, and Solution Architects, you will deliver secure, reliable, and high-performance data solutions while driving engineering best practices, data governance, and operational excellence across AI initiatives
Key Responsibilities
- Design, build, and maintain scalable, cloud-native data platforms that support enterprise AI and Agentic AI applications
- Lead the development of robust batch and real-time data pipelines for AI model training, feature engineering, inference, and analytics
- Build and optimize data architectures supporting LLMs, RAG, embeddings, vector databases, and AI knowledge repositories
- Develop reusable data products, feature stores, metadata services, and data APIs that accelerate AI solution development across the enterprise
- Ensure high standards of data quality through automated validation, profiling, lineage, observability, and monitoring
- Optimize data processing performance, scalability, reliability, and cost across distributed cloud environments
- Collaborate with AI Engineers and Data Scientists to prepare production-ready datasets and support model deployment, monitoring, and continuous improvement
- Implement data governance, security, privacy, and compliance controls that align with Mastercard's enterprise standards and regulatory requirements
- Design resilient, fault-tolerant data pipelines using modern orchestration, workflow automation, and event-driven architectures
- Contribute to the implementation of MLOps and AgenticOps capabilities by delivering trusted data pipelines that support automated AI workflows
Required Qualifications
- Bachelor's or Master's degree in Computer Science, Data Engineering, Information Systems, or a related field
- Significant experience designing and implementing enterprise-scale data engineering solutions supporting AI and machine learning workloads
- Strong proficiency in Python, SQL, Spark, and distributed data processing frameworks
- Experience building cloud-native data platforms using AWS, Azure, or Google Cloud Platform
- Hands-on experience with data lakes, Lakehouse architectures, data warehouses, and object storage technologies
- Experience with streaming technologies such as Kafka, Kinesis, or Azure Event Hubs.
- Strong knowledge of workflow orchestration tools such as Apache Airflow, Azure Data Factory, or similar platforms
- Experience supporting AI and Generative AI solutions through feature engineering, vector databases, semantic search, embeddings, and RAG
- Solid understanding of data modeling, metadata management, data lineage, and enterprise data governance
- Experience implementing monitoring, observability, and operational support for production data pipelines
- Strong software engineering practices, including version control, automated testing, CI/CD, and Infrastructure as Code
- Excellent analytical, communication, and stakeholder management skills
What You'll Deliver
- Production-grade AI data platforms that enable secure, scalable, and high-performance AI and Generative AI solutions
- Trusted, high-quality data pipelines that accelerate AI model development, deployment, and operational excellence
- Reusable enterprise data capabilities that improve engineering productivity and support AI innovation across Mastercard
- Modern data engineering practices that ensure data quality, governance, security, and reliability while enabling the AI Center of Excellence to deliver enterprise-scale AI solutions
Corporate Security Responsibility
All activities involving access to Mastercard assets, information, and networks comes with an inherent risk to the organization and, therefore, it is expected that every person working for, or on behalf of, Mastercard is responsible for information security and must:
  • Abide by Mastercard's security policies and practices;
  • Ensure the confidentiality and integrity of the information being accessed;
  • Report any suspected information security violation or breach, and
  • Complete all periodic mandatory security trainings in accordance with Mastercard's guidelines.

Skills Required

  • Bachelor’s or Master’s degree in Computer Science, Data Engineering, Information Systems, or a related field
  • Significant experience designing and implementing enterprise-scale data engineering solutions supporting AI and machine learning workloads
  • Strong proficiency in Python, SQL, Spark, and distributed data processing frameworks
  • Experience building cloud-native data platforms using AWS, Azure, or Google Cloud Platform
  • Hands-on experience with data lakes, Lakehouse architectures, data warehouses, and object storage technologies
  • Experience with streaming technologies such as Kafka, Kinesis, or Azure Event Hubs
  • Strong knowledge of workflow orchestration tools such as Apache Airflow, Azure Data Factory, or similar platforms
  • Experience supporting AI and Generative AI solutions through feature engineering, vector databases, semantic search, embeddings, and RAG
  • Understanding of data modeling, metadata management, data lineage, and enterprise data governance
  • Experience implementing monitoring, observability, and operational support for production data pipelines
  • Strong software engineering practices, including version control, automated testing, CI/CD, and Infrastructure as Code
  • Excellent analytical, communication, and stakeholder management skills

What the Team is Saying

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The Company
HQ: Purchase, NY
38,800 Employees
Year Founded: 1966

What We Do

Mastercard powers economies and empowers people in 200+ countries and territories worldwide. Together with our customers, we’re building a resilient economy where everyone can prosper. We support a wide range of digital payments choices, making transactions secure, simple, smart and accessible. Our technology and innovation, partnerships and networks combine to deliver a unique set of products and services that help people, businesses and governments realize their greatest potential.

Why Work With Us

We live the Mastercard Way: creating value in the communities we touch, growing together through the opportunities we see, and moving fast to innovate and scale. Our collaborative culture and our passionate people are the key to what we do, driving meaningful change as one team and connecting everyone to priceless possibilities.

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About our Teams

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Hybrid Workspace

Employees engage in a combination of remote and on-site work.

In our ongoing workplace evolution, we’ve introduced hybrid work, Work-From-Elsewhere Weeks and Meeting-Free Days.

Typical time on-site: 3 days a week
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