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GitLake: Git-for-data for the agentic lakehouse
July 09, 2026 ยท Grace Period ยท ๐ VLDB 2026
Authors
Weiming Sheng, Jinlang Wang, Manuel Barros, Aldrin Montana, Jacopo Tagliabue, Luca Bigon
arXiv ID
2607.08319
Category
cs.DB: Databases
Cross-listed
cs.AI
Citations
0
Venue
VLDB 2026
Abstract
We present GitLake, a Git-for-data design for an agent-first lakehouse. The system lifts single-table Iceberg snapshots into lakehouse-wide commits, branches, and merges, letting agents work on isolated branches while humans review and publish changes. Pipelines run on temporary branches and publish through a final merge, so all outputs become visible atomically or none do. Finally, we report production lessons as well as correctness insights from a preliminary Alloy model of our core abstractions.
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