Grid Dynamics
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Senior Data engineer
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Indexed description
We are seeking a Senior Data Engineer to join a high-impact engineering initiative aimed at modernizing and unifying the global data ecosystem for a premier, global leader in digital payment acceptance solutions. In this role, you will play a key technical role within a dedicated Grid Dynamics squad, focusing on architecting and delivering a next-generation Data Platform leveraging Databricks on AWS, Medallion Architecture, and ClickHouse for low-latency analytics. You will combine strong hands-on development with end-to-end delivery ownership—driving data quality, establishing robust automated testing practices, and translating business requirements into scalable engineering solutions.
Responsibilities
- Design and build production-grade data pipelines and data platform components using Databricks on AWS, PySpark, Python, and SQL.
- Implement scalable Data Models based on the Medallion Architecture framework (Bronze, Silver, and Gold layers).
- Architect and optimize low-latency, real-time analytics data paths using ClickHouse.
- Drive engineering quality across the delivery process by building automated unit, integration, and data quality testing frameworks without relying on dedicated QA resources.
- Collaborate directly with client stakeholders and team leadership to refine backlog items, clarify requirements, and run technical discussions.
- Conduct design and code reviews to enforce system reliability, maintainability, and architectural standards.
- Provide pragmatic support and maintenance for a legacy Hadoop/Kafka reporting platform (~10% effort split) while supporting the strategic shift to the new platform.
- 5+ years of commercial data engineering experience building, scaling, and maintaining enterprise data platforms.
- Strong hands-on experience with Databricks, Spark / PySpark, Python, and advanced SQL.
- Proven track record of designing data models and architectures using the Medallion Architecture pattern.
- Practical experience implementing high-volume, low-latency analytics solutions using ClickHouse.
- Solid engineering background in automated testing methodologies (unit, integration, and data quality validation) within data pipelines.
- Demonstrated capability to translate complex business needs into technical designs and clear backlog requirements.
- Practical experience within the AWS cloud ecosystem.
- Familiarity with real-time streaming architectures and frameworks such as Apache Kafka.
- Domain knowledge in payment processing, financial services, or merchant reporting systems.
- Conceptual or hands-on exposure to MLOps frameworks or integrating AI/ML workflows into Databricks platforms.
- Opportunity to work on bleeding-edge projects
- Work with a highly motivated and dedicated team
- Competitive salary
- Flexible schedule
- Benefits package - medical insurance, sports
- Corporate social events
- Professional development opportunities
- Well-equipped office
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