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streaming-patterns

Kafka, Flink, Kinesis, and Spark Structured Streaming design — consumer groups, partitioning, exactly-once semantics, lag monitoring, windowing, and late-arriving data. Use this skill whenever the user needs real-time or near-real-time data processing, is redesigning a batch pipeline into streaming, asks about event-driven architectures, or mentions Kafka topics, consumer lag, checkpointing, watermarks, or stream-table joins. Also trigger when the user says batch is "too slow", stakeholders want "live" dashboards, or the pipeline needs to react to events as they happen rather than on a schedule. If latency requirements are under a few minutes, this skill should be active.

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Source facts

Repository
Methasit-Pun/data_engineer_claude_skills
Last source activity
July 5, 2026 at 11:17
Detected SKILL.md language
English
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1
Forks
0

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