Data Engineer (Apache Flink)

 Posted an hour ago
  
 Worldwide
  
5-10 years experience
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AI Summary

Design and operate high-volume, low-latency real-time data systems using Apache Flink as the core engine. Build and maintain high-scale streaming data pipelines on self-managed on-premise infrastructure.

This is a remote position.


Building high-scale, low-latency streaming data pipelines deployed on infrastructure we run ourselves (on-prem), not managed cloud services. You will design and operate high-volume real-time data systems end to end, with Apache Flink as the core stream-processing engine.



Requirements


       7+ years of experience in data engineering and software development

       Ability to write high-quality code in Java/Scala, Python, or equivalent languages

       Deep, hands-on production experience with Apache Flink — DataStream API and Table API / Flink SQL (core requirement)

       Demonstrated experience with Flink state management: keyed state, state backends (e.g., RocksDB), large state sizes, and state TTL

       Hands-on experience with checkpointing, savepoints, and fault tolerance — exactly-once vs. at-least-once semantics, recovery, and savepoint-based job upgrades

       Strong grasp of event-time processing: watermarking, windowing strategies, allowed lateness, and late-data handling

       Experience diagnosing and resolving backpressure — parallelism, operator chaining, and network buffer tuning

       Experience operating Flink on self-managed infrastructure (Kubernetes or YARN) — application vs. session mode, high availability, and rolling upgrades

       Practical experience with stream processing (Kafka Streams or equivalent) and messaging systems for high-volume workloads, including exactly-once sinks and schema registry usage

       Practical experience with distributed query engines (e.g., Trino/Presto or similar)

       Practical experience with ETL / data integration tools, commercial or open-source (e.g., Datastage, Informatica, Apache NiFi, or similar)

       Practical experience with SQL-based transformation frameworks (e.g., dbt or others)

       Strong SQL skills and understanding of data modeling and data warehousing for analytical workloads

       Hands-on experience with real-time / low-latency analytical stores (columnar or OLAP engines, e.g., Apache Pinot/ClickHouse or similar)

       Practical experience with big-data platforms and distributions (e.g., Cloudera, Hadoop ecosystem, or similar)

       Practical experience containerizing and operating data workloads (Docker; Kubernetes a plus)

       Experience with workflow orchestration tools (e.g., Airflow or similar)

       Familiarity with data lake table formats (e.g., Apache Iceberg or similar), including streaming ingestion, compaction, and small-file management

       Familiarity with data governance / cataloging tools (e.g., DataHub or similar)

       Familiarity with lakehouse management systems (e.g., Apache Amoro or similar)

       Familiarity using AI tools for development and debugging (Claude, Cursor, Codex)



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