Lead Data Engineer

JobCubby

Hinoba-an

On-site

PHP 1,800,000 - 3,000,000

Full time

2 days ago
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Job summary

Mastercard is seeking a Lead Data Engineer to join the AI & DPE Data Engineering platform. You will build and evolve large-scale backend data systems, real-time and batch pipelines, and AI-enabled services powering analytics and automation.

The role emphasizes Scala/Python/Java, CDP and Spark, and cloud-based architectures. You will work with massive datasets, leverage modern data platforms, and contribute to AI-driven workflows to transform data processing at global scale.

Qualifications

  • BS/BA degree in Computer Science, Engineering, Information Systems, or related field.
  • Strong hands-on experience with Scala, Python/Java in backend or data-intensive systems.
  • Experience with Cloudera Data Platform (CDP) and Spark.
  • Familiarity with Cloudera Manager for cluster administration, monitoring, or troubleshooting.
  • Deep understanding of data modeling concepts, distributed systems, and large-scale data processing.

Responsibilities

  • Design, develop, and maintain backend services and data pipelines using Scala, Python, and Java.
  • Build and optimize batch and streaming workloads on CDP using Spark.
  • Design and implement high-quality datamarts and curated datasets with emphasis on data integrity and performance.
  • Collaborate with analytics teams to enable downstream consumers (visualization, reporting tools).
  • Create clear technical documentation and participate in Agile/Scrum ceremonies.

Skills

Scala
Python
Java
CDP
Spark
Cloudera Manager
Data modeling
Distributed systems
Problem solving

Education

BS/BA in Computer Science, Engineering, Information Systems or related

Tools

Databricks
Kafka
Hadoop
Hive/Impala

Job description

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.

Lead Data Engineer
Position Overview

Have you ever wanted to be part of something BIG? Now is the time to make an immediate impact at a leading global technology company, Mastercard. This role is part of the AI&DPE Data Engineering platform team, responsible for building and evolving large scale backend data systems, real time and batch pipelines, and AI enabled services that power analytics, decisioning, and automation across the organization. This is a backend engineering role, focused on Scala/Python/Java, distributed data platforms (Cloudera/Spark), and cloud based architectures, with a strong emphasis on AI agent creation and intelligent automation. Visualization tools (e.g., Qlik) are consumers of the platform, not the core focus of this role. You will work with massive transactional datasets, modern big data and cloud platforms, and AI driven workflows to transform how Mastercard processes, enriches, and operationalizes data at global scale.

PRIMARY RESPONSIBILITIES
Backend & Data Platform Engineering
  • Design, develop, and maintain backend services and data pipelines using Scala, Python and Java
  • Build and optimize batch and streaming workloads on Cloudera Data Platform (CDP) using Spark
  • Work with Cloudera Manager to support platform configuration, monitoring, performance tuning, and operational stability
  • Design and implement high quality datamarts and curated datasets with strong emphasis on data integrity, performance, and reliability
AI Agents & Intelligent Automation
  • Design, build, and integrate AI powered agents that operate to support:
  • Anomaly detection and operational intelligence
  • workflow automation
  • Apply generative AI driven, or rule based agents to reduce manual effort and improve scalability across backend systems
Cloud & Modern Data Architecture
  • Build and support data and compute workloads in AWS environments
  • Leverage Databricks for large scale data processing, advanced analytics
  • Contribute to cloud native and hybrid architectures integrating on prem and cloud platforms
Integration & Downstream Enablement
  • Enable downstream consumers (analytics, visualization, reporting tools such as Qlik) through well designed, reliable backend data interfaces
  • Partner with analytics, fraud, and business teams to ensure backend systems meet evolving needs without compromising platform stability
Documentation & Collaboration
  • Create clear technical documentation, including architecture diagrams, data flows, and design specifications
  • Participate in Agile/Scrum ceremonies and cross functional design reviews
  • Mentor and upskill team members in backend engineering, big data, and AI agent concepts
KNOWLEDGE AND SKILL REQUIREMENTS
Required
  • BS/BA degree in Computer Science, Engineering, Information Systems, or related field
  • Strong handson experience with Scala,Python/Java in backend or data intensive systems
  • Experience working with Cloudera Data Platform (CDP) and Spark
  • Familiarity with Cloudera Manager for cluster administration, monitoring, or troubleshooting
  • Strong understanding of data modeling concepts, distributed systems, and large scale data processing
  • Excellent problem solving skills and ability to work independently in complex environments
GOOD TO HAVE / STRONGLY PREFERRED
  • Hands on experience building, integrating, or supporting AI driven agents or intelligent automation solutions
  • Experience with Databricks for data engineering or ML workloads
  • Experience working in AWS (e.g., S3, EC2, EMR, Glue, Lambda, IAM, or equivalent services)
  • Knowledge of streaming and big-data technologies:
    • Kafka
    • Hadoop ecosystem
    • Hive/Impala
  • Exposure to model monitoring, or AI platform enablement
  • Experience with ETL tools such as Informatica
  • Experience working in Agile / Scrum teams within large enterprises
Corporate Security Responsibility
  • 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.
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