Ask. Connect. Analyze. Trace

Talk To Your Data With Answers You Can Trust

Give business teams a private AI data agent that understands your metrics, works across approved ERP, CRM, finance, operations, and knowledge databases, and turns plain-English questions into traceable business insights.

Go straight to the source: your database. No middleman and no artificial limits. TTYD talks directly to the data layer, so your answers aren’t limited by what an API, connector, or MCP server chooses to expose.

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The New ERA

See what changes when business data becomes conversational

Compare the old bottlenecks with the governed AI approach that replaces them.

Traditional way

Every new question becomes another report request

Business users either work around existing dashboards or wait for analysts to translate a question into SQL, filters, and another report.

  • Analyst requirments: New questions compete with existing BI priorities.
  • Slow insights: The answer often arrives after the operating context has moved.
  • Limited drill-down: Every follow-up can create another request.
AI ERA

Business users explore approved data in conversation

The agent translates intent into queries against approved sources and keeps the context alive for the next question.

  • Ask in business language Start with the question, not the report specification.
  • Deliver trends immediately: Inlcuding comparisons, visuals, and the follow-ups.
  • Detailed drilldown: Keep metric, period, region, and account context.
Answers with evidence

Show the evidence, not just the final number

A useful business answer should show how the agent interpreted the question and what data and logic produced the result.

🧊 “Why is gross margin declining in the West region?”
Answer review   Deep analysisTHE ANSWER AND ITS EVIDENCE STAY TOGETHER FOR REVIEW.
Gross margin · West region

Margin pressure is concentrated in freight and returns

Revenue remained comparatively stable while freight expense and return-related costs increased during the same period.

3.8 pts

Example gross-margin decline

How This Answer Was Produced

Meaning resolvedSources approvedQuery validatedEvidence returned

The evidence

Business definition
Gross Margin = (Net Sales – COGS)/Net Sales X 100
Sources
Finance ERP + Sales + Returns
Filters
West region + previous completed quarter
Freshness
Latest available approved refresh
Query logic
Approved sales, COGS, freight, and returns joined by region and period.

Interpret

Resolve metric, period, region, entity, and business meaning.

Resolve Sources

Identify the approved systems needed for the analysis.

Generate and Validate

Build the query plan against approved schema relationships.

Answer With Evidence

Return the result with sources, filters, and useful query context.

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The governed data path

From source systems to an agentic data experience

Folio3 connects the approved data, configures the semantic model, validates the agent, and builds the business experience on top.

Answers and Agentic Apps

Conversational assistants, executive insights, recurring reports, and workflow integrations.

01

AI Agent and Validation

Interpret intent, build the query plan, validate it, and execute against approved data.

02

Semantic Data Layer

Business glossary, metrics, entities, schema relationships, profiles, and sensitivity context.

03

Approved Data Sources

ERP, CRM, finance, operations, custom SQL, and approved knowledge context.

04
Data flow: Answers and agentic apps, AI agent and validation, semantic data layer, and approved data sources.
Where it gets used

Get faster answers across every business function

The same governed model can support different business roles without forcing every team into the same dashboard.

Finance

Revenue, cost centers, budget variance, P&L, margin, and forecast exploration.

“What changed in operating margin, and which cost centers explain it?”

Sales and Revenue

Pipeline performance, account trends, regional comparisons, customer activity, and risk signals.

“Which accounts are slipping, and what changed in their activity?”

Operations

Inventory, service throughput, production trends, supply chain, logistics, and exception analysis.

“Where are service delays increasing, and what do the affected cases have in common?”

Executive Teams

Cross-functional questions, insights, trend summaries, and decision-ready drill-downs.

“What changed this month across revenue, margin, inventory, and customer risk?”
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How Folio3 builds it

From kick off to a working AI Data Agent in 4 weeks

Start narrow with a high-value data domain, validate real user questions, then expand into more data, agents, reports, and workflows.

week 01

Kickoff and Discovery

Select the initial dataset and define high-value business questions.

  • Dataset selected
  • Question set
  • Environment plan
week 02

Connect, Model, and Deploy

Connect approved data and configure the initial semantic model.

  • Data connected
  • Semantic layer
  • Agent deployed
week 03

Pilot and Validate

Test real questions with a small pilot group and refine the experience.

  • Pilot users
  • Reviewed Q&A
  • Refined rules
week 04

Expand and Hand Off

Broaden the experience with additional data, views, or integrations.

  • Production path
  • Expansion backlog
  • Handoff
Let’s talk about your data

See Talk To Your Data Working on a Real Business Question

Start with a live demonstration, then identify the first dataset and business questions worth validating in your environment.

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[email protected]

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