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Tool 1 of 5Signal Brief #13

QueryStory brings a trust layer to AI analytics

Covered by Signal Brief for B2B SaaS product managers — one of 5 tools in Issue #13 · techcrunch.com

What it does

QueryStory emerged from stealth Wednesday with $6 million in seed funding and a product aimed squarely at the biggest obstacle in enterprise AI adoption: trusting the answers. CEO Shapor Naghibzadeh learned verified knowledge the hard way — as a Google SysOps engineer in 2009 he was pulled into the war room tracing the Chinese-backed Operation Aurora intrusion through disparate networks, spent six years building tools that let security analysts query complex data, and in 2016 co-founded Chronicle, the security-analytics company spun out of Google’s X Labs. Now, with CTO Stanley Yang, a former Google colleague and lead engineer at EvolutionIQ, and CPO David Glusic, an Accenture veteran, he is applying that investigative discipline to business analytics. The pattern: ask a series of questions of the data, then assemble the answers into a narrative grounded in truth — hence the name. The trust machinery is the product: every analysis carries a confidence indicator showing why the agents believe the result is accurate; the SQL the system writes surfaces automatically for inspection; and any analysis can be flagged for a human coworker to review, with reviews recorded in the platform so an organization accumulates a corpus of verified answers instead of a sprawl of contradictory ones. That sprawl is the failure mode Naghibzadeh targets — connect a chat UI to company data and thousands of people each get their own version of the truth, put it in a slide deck, and share it, with nothing tying any of it back to the data. The platform is model-agnostic, aimed at large enterprises with big proprietary databases, and priced on value rather than token consumption. TechCrunch’s own test: a space-activity database visualization that once took a developer several weeks was produced in hours. Brightmind Partners’ Tayler Sipperly: “AI is more brittle than people realize.”

Why it matters for PMs

Every PM who has put AI in front of product data has hit the same wall: a stakeholder who doesn’t believe the number. QueryStory’s answer is worth copying even if you build your own version — show the work (surface the queries), show the confidence (explain why the system believes itself), and make human review a recorded artifact rather than a hallway check. Three more implications. First, “version of the truth” sprawl is a real failure mode in product orgs: two teams prompt the same data differently and bring conflicting numbers to the same roadmap review, and a shared, verified analysis layer is the fix; if your analytics stack doesn’t offer one, expect this category to keep growing. Second, the positioning lesson: against the frontier labs’ general-purpose cowork tools, QueryStory sells trust rather than intelligence and prices on outcomes rather than consumption — when models commoditize, verifiability is the defensible wedge. Third, note the pedigree: security-analytics founders treating enterprise data like an investigation scene, chain of custody included. That is where analytics UX is heading.

techcrunch.com

The link Signal Brief published for this tool in Issue #13.

Read the full Issue #13QueryStory's trust layer for AI analytics + 4 more

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