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My Team Tracks AI-Generated Code. The Number Shocked Us.

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My team tracks how much of our codebase is AI-generated. The number shocked us.



We deployed Buildermark last week. It's an open-source tool that scans Git history and flags AI-written lines.









Why We Started Measuring



Every startup has that moment.



You're reviewing a PR and realize you can't tell who wrote it. The human or the AI.



We hit 40% AI-generated code by volume. Some files were 90%.



The CTO asked for the report. Then asked what it meant.



Nobody had an answer.









The Three Problems Nobody Talks About



Problem 1: Ownership blur



When AI writes the fix, who owns the bug?



We found junior devs treating Claude output as gospel. They'd copy-paste without understanding.



Senior engineers would approve because "it looks fine."



Problem 2: The review gap



Human-written code gets scrutinized. AI-written code gets rubber-stamped.



We caught security issues in AI-generated config files. Stuff a human would never write.



Problem 3: The bus factor



If your AI provider degrades (like Claude did last month), your velocity tanks overnight.



We're now vendor-locked to Codeium's style. Claude's patterns. GitHub Copilot's idioms.









What We Changed This Week



We added a pre‑commit hook that tags AI‑generated lines.



Every PR shows the percentage in the description.



If it's over 50%, it needs extra review. No shortcuts.



We also started tracking "AI debt" – lines that only one person understands because they came from a prompt nobody wrote down.









The Real Metric That Matters



Lines of AI code is vanity.



The real metric is: How many AI‑generated lines survive to production without a human understanding them?



We're at 12%.



That's 12% of our codebase that could break and nobody would know why.






Is your team measuring AI code?



What percentage would surprise you?



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