AI Analyst for natural-language answers
Ask questions about performance in plain language and get answers from live data. The AI Analyst page says it explains what changed, why it changed, and what to do next.
Databox AI Agents & Automations combines AI Analyst, reusable Skills, scheduled Routines, and MCP connections for governed analytics and automated reporting across data sources.
Databox AI Agents & Automations is an analytics and reporting product built around AI-assisted analysis, reusable workflows, and connected business data. On the page, Databox describes three main automation layers: Skills for capturing repeatable analysis, Routines for scheduling that analysis, and AI agents for delegating end-to-end workflows under oversight.
The product sits inside a broader platform that also includes AI Analyst, MCP connections, integrations, semantic data modeling, dashboards and reports, and goals and OKRs. Databox frames the system as a way to combine governed metrics, business context, and AI so teams can ask questions, automate recurring work, and keep performance reporting consistent across the organization.
Ask questions about performance in plain language and get answers from live data. The AI Analyst page says it explains what changed, why it changed, and what to do next.
Package recurring analysis into reusable Skills so the same steps, context, and standards can be run by different people on the team.
Schedule Skills as Routines to run daily, weekly, monthly, or on a custom cadence, then receive results by email, Slack, or in-app.
Use Databox’s connected data layer to work from 130+ tools, spreadsheets, databases, and APIs, with shared metric definitions and governed access.
Connect AI tools such as ChatGPT or Claude through MCP so they can access trusted metrics and trigger actions from Databox.
Track performance with dashboards, reports, goals, OKRs, anomaly detection, pre-built metrics, and custom metrics in one platform.
Agencies can monitor multiple client accounts, save recurring analysis as skills, and schedule routine reporting so account changes are surfaced before a monthly review.
Growing businesses can ask the AI Analyst questions about performance and get plain-language explanations of what changed, why it changed, and what to do next.
AI implementers can connect Databox to external AI tools through MCP, using governed metrics and business context as a foundation for AI-driven workflows.
Teams with repeated reporting tasks can turn a known process into a Skill, run it from slash commands, and deliver the output by email, Slack, or in-app.
Organizations tracking goals can combine dashboards, reports, and OKRs with automated data collection to monitor progress against measurable targets.
Databox positions this as part of its analytics platform, combining AI Analyst, automations, connected data sources, a semantic layer, and data governance. The site also shows support for dashboards, reports, goals and OKRs, and MCP connections to AI tools.
The page says you can turn recurring analysis into reusable Skills, schedule those Skills as Routines, and delegate entire workflows to AI agents. It also says results can be delivered by email, Slack, or in-app.
Databox says it connects more than 130 tools, spreadsheets, databases, and APIs. The pricing page specifically mentions cloud integrations, spreadsheets, databases, custom integrations, the Databox API, and MCP server access on paid plans.
The pricing page shows a Free plan and paid plans, and says users can start on a 14-day free trial of the Growth plan before choosing a plan. The page also shows AI credit allowances tied to the account.
The source material shows the product is designed for agencies, growing businesses, AI implementers, and Databox partners. The AI agents section is marked as coming soon, so some automation capabilities may not yet be generally available.
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