Vera technology from UnicornIQ is built to prevent AI hallucinations when working with enterprise data.
Vera describes itself as a "verified intelligence platform" “that makes AI tell the truth.” Its goal is to identify outdated records such as product prices that conflict with newer entries, and replace old information with updated data. This ensures sales proposals generated by a sales chatbot remain factually accurate.
Vera can operate behind an AI chatbot or function as one, and it consists of two core parts: a data ingestor and a natural language-driven query answer facility.
Before any AI consumes a company’s data, the ingestor cleans its unstructured content, including documents, PDFs, slide decks, chat threads and emails where most institutional knowledge resides. It splits unstructured material into discrete pieces known as claims, and recognizes specific facts within them, such as pricing, specifications, dates, sales workflows or corporate policies. It cross-checks every claim against all others. Conflicting and obsolete facts are either resolved or flagged for a subject expert, or maven, to review before AI accesses the data. A verified claim is referred to as "sealed."
The query answer component receives inputs from a natural language sales chatbot and returns reliable responses sourced from the cleaned dataset. For instance, it can work through questions like “What’s the list price for a 6-unit Kinetic site with Halo and Sentinel Enterprise? The customer’s last quote came off the FY26 price book. Does that price still stand?”
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Mark Snow, UnicornIQ co-founder and CTO, said: “For 30 years I was the engineer in the room when the customer asked the hard question, and for 15 years I helped train engineers in those rooms for Cisco’s partners. Time and again, we watched capable teams lose deals because they relied on bad data, or because a new feature already delivered what the customer needed and nobody was aware it existed yet. Our team built Vera so the correct answer appears alongside its source, and so people with deep expertise can spend their time lifting up their peers.”
UnicornIQ states in its press materials, "tech OEMs and VARs face a harsh reality: a field rep has a customer meeting tomorrow morning, so they rush through a maze of shared drives and outdated portals to cobble together a pitch. They end up quoting stale pricing, referencing discontinued product features, or missing context on what that specific customer purchased last quarter."
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UnicornIQ Vera diagram.
Generative AI was supposed to fix this problem, but when a model lacks information it fills the gap with plausible-sounding answers. Retrieval-augmented generation (RAG), the common workaround, searches through a company’s documents yet never verifies whether those documents align with one another or remain valid. Users then receive whatever answer the AI deemed correct on that day.
Vera’s distinct subfeatures include:
An autonomous enablement engine stops field teams from pitching blindly based on outdated PDFs. Vera tracks live product updates and refreshes learning paths, coaching resources, and documentation automatically in real time so field staff always sell using current information. “Vera, how do I pitch this new feature to ACME Corp? Build me a compliant leave-behind using current pricing and our latest corporate brand guidelines.”
A full channel partner program is presented as a complete operational layer built for the channel ecosystem. Vera manages partner profiles, contracting, deal registration and attribution, tier structures, rebates, and incentives, actively coordinating the entire partner lifecycle.
A CRM & execution Layer works alongside enterprise platforms such as Salesforce instead of replacing them. Vera surfaces stagnant deals, flags missed customer touchpoints, and runs scheduled tasks like drafting replies, turning static knowledge into active revenue generation.
Pitch coaching & accuracy auditing lets reps run pitch practice inside Vera or invite Vera to join live customer meetings. Vera actively evaluates them not only on presentation skills, but also product and pricing accuracy against the verified knowledge base.
Vera is available now. Users can access the free trial or reach out to sales and partnership teams at UnicornIQ.
Comment
UnicornIQ does not position Vera as an AI chatbot or large language model (LLM), though former co-founder Joe Onisick strongly suggests it is an LLM in its own right. The company has been contacted to clarify this point.
Jeremy Stalter.
In a February 2026 YouTube video, Onisick compares Vera to a data hygiene black box, describing how Vera processes data sources: “I can parse them and distill the information, and then I create a vector database which is just a source of truth. It’s not really metadata about your data. It’s the facts in text with a vector index in a gravity-weighted database.” That description aligns with an LLM.
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Joe Onisick and Kieth Townsend YouTube video.
The data is exposed via an API and MCP (Model Context Protocol) server. Vera is designed to integrate with any existing AI stack a customer runs and “sit in the back,” for example, behind a sales AI chatbot. As Onisick puts it: “Just add a prompt to that existing agent and tell it to check for truth first.” The chatbot agent then connects to Vera to draw on its information.
If Vera receives a question it cannot answer, it will state this and request input from a human maven, a trusted specialist, as part of a human-in-the-loop workflow. An answer provided by a maven is then added to Vera’s knowledge base and used going forward.
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Sandy Yang/Global Strategy Director
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