Integrate Goose with Live Campaigner Data via CData Connect AI
Goose is an open source AI agent that runs locally on your machine and works with a wide range of LLM providers. It supports the model context protocol (MCP) through its extensions framework, so you can add external tools and data sources and give the agent access to live systems beyond the model's training data.
By integrating Goose with CData Connect AI through the built-in MCP Server, Goose gains governed, real-time access to live Campaigner data. You can list catalogs, explore schemas, and query records from Campaigner data using natural language prompts, with all data access running securely against authorized sources.
This article explains how to configure Campaigner connectivity in Connect AI, generate the required personal access token, install and set up Goose, add the Connect AI MCP Server as a custom extension, and verify the integration by querying live Campaigner data from the Goose chat.
Step 1: Configure Campaigner connectivity for Goose
Connectivity to Campaigner from Goose is made possible through Connect AI's Remote MCP Server. To interact with Campaigner data from Goose, start by creating and configuring a Campaigner connection in Connect AI.
- Log into Connect AI, click Sources, and then click Add Connection
- Select Campaigner from the Add Connection panel
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Enter the necessary authentication properties to connect to Campaigner.
Start by setting the Profile connection property to the location of the Campaigner Profile on disk (e.g. C:\profiles\Campaigner.apip). Next, set the ProfileSettings connection property to the connection string for Campaigner (see below).
Campaigner API Profile Settings
Sign into your Campaigner account and navigate to Account Settings > Users, create a new API User role, and save to generate the API key.
- Click Save & Test
- Navigate to the Permissions tab and update user-based permissions
Add a Personal Access Token
A Personal Access Token (PAT) is used to authenticate the connection to Connect AI from Goose. It is best practice to create a separate PAT for each integration to maintain granular access control.
- Click the gear icon () at the top right of the Connect AI app to open Settings
- On the Settings page, go to the Access Tokens section and click Create PAT
- Give the PAT a descriptive name and click Create
- Copy the token when displayed and store it securely. It will not be shown again
With the Campaigner connection configured and a PAT generated, Goose can now connect to Campaigner data through Connect AI.
Step 2: Install and set up Goose
Next, install Goose, choose an LLM provider, and add the Connect AI Remote MCP Server as a custom extension so the agent can discover and call live data tools through Connect AI.
- Download and install Goose by following the official installation guide, then launch the application
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On the Welcome to goose screen, choose an AI provider. Select Use Free/Local Providers to run a local model, or Connect to a Provider to configure a provider such as OpenAI, Anthropic, or Google, and enter the required API key
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In the left navigation, click Extensions, then click + Add custom extension
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In the extension dialog, configure the server with the following values:
- Extension Name: CData MCP, or any name of your choice
- Type: Streamable HTTP
- Endpoint: https://mcp.cloud.cdata.com/mcp
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Under Request Headers, add the following two headers and click + Add after each pair:
- Authorization: Basic your_base64_encoded_email_PAT
- Content-Type: application/json
Note: Goose will use Basic authentication with Connect AI. Combine your Connect AI user email and the PAT you created earlier in the format email:PAT, base64 encode the combined string, and prefix it with Basic. For example, given [email protected]:ABC123...XYZ789, the Authorization header value becomes something like: Basic dXNlckBkb21haW4uY29tOkFCQzEyMy4uLlhZWjc4OQ==
- Click Save to save the configuration
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Return to the chat, click the extensions icon at the bottom of the chat input, and confirm that the configured MCP is enabled
With the MCP server added and an LLM provider configured, Goose is ready to query live Campaigner data through Connect AI.
Step 3: Query live Campaigner data from Goose
With the integration complete, use the Goose chat to interact with live Campaigner data through natural language prompts handled by the configured LLM.
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With the CData MCP extension enabled, type a prompt in the chat, for example:
- List catalogs from my CData MCP
- Show the available schemas and tables for Campaigner
- Query the top 5 records from a table in Campaigner data
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Goose calls the Connect AI MCP Server and returns live results from Campaigner data
At this point, your Goose agent communicates with the Connect AI MCP Server and retrieves live Campaigner data through remote MCP tools directly from the chat.
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