We connect Claude, ChatGPT, and other MCP-compatible AI clients directly to your real analytics data, GA4, Looker Studio, your CRM, so your team can ask a question in plain language and get a real, live answer instead of exporting a spreadsheet.
See sample deliverables →An Analytics MCP server is a connection that lets an AI client like Claude or ChatGPT query your real analytics data directly, using Google’s official GA4 and Looker Studio MCP servers or a custom-built API, instead of you exporting reports by hand. Access is scoped read-only by default, and every connection is documented so your team can maintain it after handoff.
The gap is not data, it is the ten minutes it takes to open five tabs, filter, and export before someone can answer a simple question.
Official Google GA4 + Looker Studio MCP integrations used
Default scope; write access is never silently granted
GA4, Looker Studio, CRM, or a custom data warehouse
Every connector shipped with a runbook your team keeps
Query speed and available fields depend on your GA4 property configuration and the MCP client you connect.
One-time implementation. You own every credential and every connector when we hand it off.
One-time build. No ongoing management fee unless you add a maintenance retainer separately.
Six concrete deliverables ship on every Analytics MCP & API engagement.
GA4 and Looker Studio official Google MCP servers connected and authenticated against your properties.
Purpose-built REST endpoints for any data source without an existing MCP server, CRM, warehouse, or internal tool.
Every connection scoped to least-privilege, read-only by default, with write access flagged and never silently granted.
A tested set of real queries run against the live connection to confirm answers match your source-of-truth reports.
Verified working against the specific AI client your team actually uses, Claude, ChatGPT, or another MCP-compatible tool.
Written documentation covering credentials, scope, and maintenance so your team owns the connection after handoff.
A rushed MCP setup either over-grants access or breaks the first time your GA4 schema changes. We scope first, then build to hold.
Before any server is configured, we map exactly which data sources your team actually needs to query, and at what access level, before touching a single credential.
Once the scope is signed off, we configure the MCP servers or build the custom API, test it against real queries, and document it for your team.
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If we miss any of them, we fix it at no additional charge. Written into every implementation agreement.
Every API key and MCP server connection is created under your accounts, not ours. If you ever stop working with MV3, the connection stays live and yours.
Every connection ships read-only unless you explicitly request write access, and any write-access request is flagged and confirmed with you before it is built, never assumed.
A written runbook covering every credential, scope, and connector ships at handoff, so the connection does not depend on any one person remembering how it was built.
A sanitized view of the kind of connector checklist your team receives at handoff.
Every connector is tracked to completion and tested before handoff, not marked done because a config file exists.
Five stages. Same protocol every engagement.
Inventory of your current data sources, existing API access, and what your team actually needs to query.
Written scope document: which sources, which access level, which AI client, signed off before build starts.
MCP servers configured or custom API endpoints built against the signed scope.
Real queries run against the live connection and checked against source-of-truth reports.
Written runbook delivered to a named owner on your team, covering credentials and maintenance.
Illustrative composites built from real engagement patterns, not verified individual clients. Used to make the working style concrete, not to claim a specific outcome for a specific company.
Our team used to wait on the analyst to pull a GA4 export. Now anyone can ask Claude directly and get the same numbers our dashboard shows, scoped so nobody can accidentally change anything.
We had a custom warehouse with no MCP server available. MV3 built a scoped API endpoint instead, same workflow, read-only, documented, and our engineering team signed off on the access model.
The handoff runbook mattered more than the build itself. When our analyst left, the next hire didn’t have to reverse-engineer anything, it was already written down.
Illustrative composite personas. Not verified statements from a named, specific client.
One-time implementation fee. No ad spend, no ongoing management fee unless you add a maintenance retainer separately.
Free scoping call. Written implementation quote inside 3 business days. You own every credential at handoff.
We hold a fit bar on this service. If any of the below is true, we'll say so on the call.
If you’re a fit, keep scrolling. Or book the call now →
Leads MV3’s analytics and attribution implementations, including GA4 server-side tracking and AI-queryable data connections.
Free scoping call. Written implementation quote inside 3 business days. Read-scoped by default, documented at handoff.
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