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How can engineering platform teams govern ChatGPT-assisted code reviews in 2025?

Last reviewed: 2025-10-26

Ai EngineeringAi GovernanceProductivity AnalyticsPlaybook 2025

TL;DR — Engineering platform leaders can turn ChatGPT-governed code review program with policy checks, rationale logs, and secure patterns into durable revenue by pairing ChatGPT to summarize diffs, enforce secure patterns, and auto-document decisions with references with risk scoring dashboards, compliance templates, and human-in-the-loop approval gates across GitHub, Linear, Harness, and SonarCloud.

Signal check

Playbook

  1. Map the knowledge inputs ChatGPT needs, tag sensitive data, and define what “good” looks like for stakeholders consuming ChatGPT-governed code review program with policy checks, rationale logs, and secure patterns.
  2. Draft prompt playbooks and review workflows so subject-matter experts can refine outputs quickly while ChatGPT to summarize diffs, enforce secure patterns, and auto-document decisions with references handles first drafts.
  3. Operationalize quality control—create scorecards, feedback bots, and quarterly audits to continuously improve answer accuracy and governance.

Tool stack

Metrics to watch

Risks and safeguards

30-day action plan

Conclusion

Pair disciplined customer research with ChatGPT to summarize diffs, enforce secure patterns, and auto-document decisions with references, document every iteration, and your ChatGPT-governed code review program with policy checks, rationale logs, and secure patterns will stay indispensable well beyond the 2025 hype cycle.


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