Dagster is a data orchestration platform for building, testing, and monitoring data pipelines. Unlike Airflow (task-oriented), Dagster models pipelines as assets (data, ML models, reports) with dependencies. Engineers define compute units (ops), declare data dependencies, and Dagster orchestrates execution, handles failures, and traces lineage. Senior Dagster architects earn 10-15% premium because they ship pipelines that are 50% shorter, more maintainable, and observable than Airflow. Learning: 6-8 weeks.
Dagster is a modern data orchestration platform for building, testing, and monitoring data pipelines. Unlike Airflow (which treats pipelines as DAGs of tasks), Dagster models pipelines as asset dependencies, named data outputs with clear lineage. Example: Extract data from API → Transform with Pandas → Load to warehouse → Compute metrics → Update dashboard. Dagster tracks each asset, knows which upstream assets changed, and reruns downstream jobs as needed.
| אזור | ג׳וניור | בינוני | סניור |
|---|---|---|---|
| USA | $85k | $140k | $215k |
| UK | $52k | $85k | $130k |
| EU | $58k | $92k | $140k |
| CANADA | $80k | $135k | $205k |
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