AI software factories fail without context and governance, experts warn
AI-powered software factories promise to automate coding by letting agents handle implementation, testing, and review with minimal human involvement. While these agents can reduce development time from days to hours, critical tasks like product validation, architectural impact assessment, and business context still require human judgment. Models tend to optimize for easily measurable outcomes such as passing tests or closing issues, which can mask deeper quality problems. Experts recommend using AI agents within structured processes that prioritize decision quality over implementation speed, with humans focusing on architecture, business context, and long-term consequences. Without proper governance, rapid AI-generated code can quickly accumulate technical debt that is difficult and costly to address later.
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