The models aren't the problem. AI can't reach most of your data, your systems disagree on what that data means, and the answers it does give can't be trusted or owned. LazyFox removes all three barriers, on top of the stack you already run, with no migration.
Enterprise AI stalls for three reasons: AI can only reach a fraction of enterprise data (IDC estimates less than 1% is in active use), different systems disagree on the meaning of the same metric (e.g. revenue in SAP vs. Salesforce vs. a BI tool), and answers that can't be explained or traced back to a governed definition can't be trusted or acted on.
LazyFox is a semantic governance layer that sits on top of existing systems, read-only and without migration. It connects structured and unstructured data, resolves every metric to one governed answer, and makes every AI answer traceable to its definition, so enterprises get trustworthy, portable AI on top of the stack they already run.
LazyFox is the semantic governance layer that sits above your existing systems, giving every tool, team, and model one shared, trustworthy understanding of your business. It goes live in days, with no migration.
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