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You will design, develop, and maintain a scalable data platform including Data Lakehouse, ETL processes, and orchestration. You will also collaborate with cross-functional teams to optimize data pipelines and ensure the reliability of the data infrastructure.
We are seeking an experienced Data Engineer. The ideal candidate is self-motivated, can multitask, and is a proven team player. You will design, develop, manage, and maintain our open-source data platform, including our Data Lakehouse (S3, Apache Iceberg, and ClickHouse), ETL processes, and orchestration.
● Develop a scalable data platform integrating multiple sources for easy access.
● Design and enhance data tools (orchestration, governance, data lakehouse, BI, etc.).
● Ensure smooth operation of data systems for analysts, scientists, and engineers.
● Optimize data pipelines (ingestion, processing, and output) in a microservices environment.
● Build, maintain, and monitor ETL/ELT processes .
● Troubleshoot and improve the performance, scalability, and reliability of the data infrastructure (S3, Apache Iceberg, ClickHouse).
● Collaborate cross-functionally with data scientists, analysts, and backend engineers to understand data needs and deliver solutions.
● Implement and champion data quality, governance, and security best practices across the platform.
● 3+ years of experience as a Data Engineer or in a similar data infrastructure role.
● Strong proficiency in SQL and hands-on experience with data modeling.
● Experience with data lake/lakehouse architectures (e.g., Apache Iceberg, S3, or similar).
● Experience with analytical / columnar databases (e.g., ClickHouse or similar).
● Experience building and orchestrating ETL/ELT pipelines .
● Strong programming skills in Python and/or Scala/Java.
● Experience working within a microservices architecture and cloud environments (AWS preferred).
● Self-motivated, strong multitasking skills, and a demonstrated team player.
● Excellent communication skills and the ability to work both independently and collaboratively.
● Hands-on experience with Apache Spark (or similar technologies) for large-scale data processing.
● Professional proficiency in written and spoken English.
● Note: this role is focused on batch data processing (not real-time streaming).
Nice to Have
● Experience working with and contributing to open-source data platforms and tools.
● Familiarity with BI and visualization tools (e.g., Superset, Looker, Tableau, Metabase, or similar).
● Experience with containerization and orchestration (Docker, Kubernetes).
● Experience with infrastructure-as-code and CI/CD practices.
● Experience with AWS EMR and running Apache Spark workloads in a cloud environment.
● Experience leveraging AI-assisted development tools (e.g., GitHub Copilot, Cursor, or similar) to boost engineering productivity.
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