# How to integrate Sendspark MCP with Autogen

```json
{
  "title": "How to integrate Sendspark MCP with Autogen",
  "toolkit": "Sendspark",
  "toolkit_slug": "sendspark",
  "framework": "AutoGen",
  "framework_slug": "autogen",
  "url": "https://composio.dev/toolkits/sendspark/framework/autogen",
  "markdown_url": "https://composio.dev/toolkits/sendspark/framework/autogen.md",
  "updated_at": "2026-05-12T10:25:25.127Z"
}
```

## Introduction

This guide walks you through connecting Sendspark to AutoGen using the Composio tool router. By the end, you'll have a working Sendspark agent that can add a new prospect to your latest campaign, list all dynamic video campaigns in workspace, fetch prospect data by email for a campaign through natural language commands.
This guide will help you understand how to give your AutoGen agent real control over a Sendspark account through Composio's Sendspark MCP server.
Before we dive in, let's take a quick look at the key ideas and tools involved.

## Also integrate Sendspark with

- [OpenAI Agents SDK](https://composio.dev/toolkits/sendspark/framework/open-ai-agents-sdk)
- [Claude Agent SDK](https://composio.dev/toolkits/sendspark/framework/claude-agents-sdk)
- [Claude Code](https://composio.dev/toolkits/sendspark/framework/claude-code)
- [Claude Cowork](https://composio.dev/toolkits/sendspark/framework/claude-cowork)
- [Codex](https://composio.dev/toolkits/sendspark/framework/codex)
- [OpenClaw](https://composio.dev/toolkits/sendspark/framework/openclaw)
- [Hermes](https://composio.dev/toolkits/sendspark/framework/hermes-agent)
- [CLI](https://composio.dev/toolkits/sendspark/framework/cli)
- [Google ADK](https://composio.dev/toolkits/sendspark/framework/google-adk)
- [LangChain](https://composio.dev/toolkits/sendspark/framework/langchain)
- [Vercel AI SDK](https://composio.dev/toolkits/sendspark/framework/ai-sdk)
- [Mastra AI](https://composio.dev/toolkits/sendspark/framework/mastra-ai)
- [LlamaIndex](https://composio.dev/toolkits/sendspark/framework/llama-index)
- [CrewAI](https://composio.dev/toolkits/sendspark/framework/crew-ai)

## TL;DR

Here's what you'll learn:
- Get and set up your OpenAI and Composio API keys
- Install the required dependencies for Autogen and Composio
- Initialize Composio and create a Tool Router session for Sendspark
- Wire that MCP URL into Autogen using McpWorkbench and StreamableHttpServerParams
- Configure an Autogen AssistantAgent that can call Sendspark tools
- Run a live chat loop where you ask the agent to perform Sendspark operations

## What is AutoGen?

Autogen is a framework for building multi-agent conversational AI systems from Microsoft. It enables you to create agents that can collaborate, use tools, and maintain complex workflows.
Key features include:
- Multi-Agent Systems: Build collaborative agent workflows
- MCP Workbench: Native support for Model Context Protocol tools
- Streaming HTTP: Connect to external services through streamable HTTP
- AssistantAgent: Pre-built agent class for tool-using assistants

## What is the Sendspark MCP server, and what's possible with it?

The Sendspark MCP server is an implementation of the Model Context Protocol that connects your AI agent and assistants like Claude, Cursor, etc directly to your Sendspark account. It provides structured and secure access to your video campaigns and prospect data, so your agent can create campaigns, manage prospects, audit webhooks, and fetch campaign analytics on your behalf.
- Dynamic campaign creation and management: Instantly launch new dynamic video campaigns or fetch details of existing campaigns in your workspace without manual setup.
- Prospect automation at scale: Add individual or multiple prospects to video campaigns, retrieve their details by email, and streamline personalized outreach in seconds.
- Webhook auditing and management: List all configured webhooks or remove outdated ones to keep your integrations secure and up-to-date.
- Campaign analytics and tracking: Retrieve data and performance metrics for your campaigns and prospects to monitor engagement and optimize results.
- API health monitoring: Check Sendspark API health status before making calls, ensuring your automations always run smoothly.

## Supported Tools

| Tool slug | Name | Description |
|---|---|---|
| `SENDSPARK_ADD_MULTIPLE_PROSPECTS_TO_DYNAMIC_CAMPAIGN` | Add Multiple Prospects to Dynamic Campaign | Tool to add multiple prospects to a dynamic campaign in bulk. Use when you need to add many prospects to your dynamic video campaign at once after confirming associated charges. |
| `SENDSPARK_ADD_PROSPECT_TO_DYNAMIC_VIDEO_CAMPAIGN` | Add Prospect to Dynamic Video Campaign | Tool to add a prospect to a dynamic video campaign. Use after confirming workspace and campaign IDs. Example: Add new prospect with name/contact details to dynamic "dyn12345" under a known workspace. |
| `SENDSPARK_API_HEALTH_STATUS` | API Health Status | Tool to check the health status of the Sendspark API. Use before making other API calls to ensure the service is up. |
| `SENDSPARK_CREATE_DYNAMIC_VIDEO_CAMPAIGN2` | Create Dynamic Video Campaign V2 | Tool to create a dynamic video campaign in a workspace. Use when you need to create a container for AI-personalized dynamic videos that can be sent to prospects. |
| `SENDSPARK_DELETE_WEBHOOK` | Delete Webhook | Delete a webhook by its unique ID. Returns a structured response with status code and message. This action is idempotent: deleting a non-existent webhook (404) with workspaceId provided returns success. Invalid webhook IDs return 400 with error details. Best practice: Always provide workspaceId to use the reliable workspace-scoped endpoint. |
| `SENDSPARK_GET_DYNAMIC_CAMPAIGN_BY_ID` | Get Dynamic Campaign by ID | Tool to retrieve details of a specific dynamic video campaign. Use after confirming workspace and campaign IDs. |
| `SENDSPARK_GET_WORKSPACE_PROSPECT_DATA_BY_EMAIL` | Get Workspace Prospect Data by Email | Tool to retrieve prospect data by email in a dynamic campaign. Use after adding a prospect to a campaign to fetch its details. |
| `SENDSPARK_LIST_DYNAMIC_VIDEO_CAMPAIGNS` | List Dynamic Video Campaigns | Tool to list all dynamic video campaigns in a workspace. Use when retrieving campaigns with optional pagination, filtering, or search. |
| `SENDSPARK_LIST_WEBHOOKS` | List Webhooks | Retrieves all configured webhooks for a Sendspark workspace. Webhooks are automated notifications sent when specific events occur in dynamic video campaigns (e.g., video created, video played, CTA clicked, video opened). Use this action to audit active webhook configurations, verify webhook URLs, or check which events are being monitored. Returns an empty list if no webhooks are configured. |

## Supported Triggers

None listed.

## Creating MCP Server - Stand-alone vs Composio SDK

The Sendspark MCP server is an implementation of the Model Context Protocol that connects your AI agents and assistants directly to Sendspark. Instead of manually wiring Sendspark APIs, OAuth, and scopes yourself, you get a structured, tool-based interface that an LLM can call safely.
With Composio's managed implementation, you don't have to create your own developer app. For production, if you're building an end product, we recommend using your own credentials. The managed server helps you prototype fast and go from 0-1 faster.

## Step-by-step Guide

### 1. Prerequisites

You will need:
- A Composio API key
- An OpenAI API key (used by Autogen's OpenAIChatCompletionClient)
- A Sendspark account you can connect to Composio
- Some basic familiarity with Autogen and Python async

### 1. Getting API Keys for OpenAI and Composio

OpenAI API Key
- Go to the [OpenAI dashboard](https://platform.openai.com/settings/organization/api-keys) and create an API key. You'll need credits to use the models, or you can connect to another model provider.
- Keep the API key safe.
Composio API Key
- Log in to the [Composio dashboard](https://dashboard.composio.dev?utm_source=toolkits&utm_medium=framework_docs).
- Navigate to your API settings and generate a new API key.
- Store this key securely as you'll need it for authentication.

### 2. Install dependencies

Install Composio, Autogen extensions, and dotenv.
What's happening:
- composio connects your agent to Sendspark via MCP
- autogen-agentchat provides the AssistantAgent class
- autogen-ext-openai provides the OpenAI model client
- autogen-ext-tools provides MCP workbench support
```bash
pip install composio python-dotenv
pip install autogen-agentchat autogen-ext-openai autogen-ext-tools
```

### 3. Set up environment variables

Create a .env file in your project folder.
What's happening:
- COMPOSIO_API_KEY is required to talk to Composio
- OPENAI_API_KEY is used by Autogen's OpenAI client
- USER_ID is how Composio identifies which user's Sendspark connections to use
```bash
COMPOSIO_API_KEY=your-composio-api-key
OPENAI_API_KEY=your-openai-api-key
USER_ID=your-user-identifier@example.com
```

### 4. Import dependencies and create Tool Router session

What's happening:
- load_dotenv() reads your .env file
- Composio(api_key=...) initializes the SDK
- create(...) creates a Tool Router session that exposes Sendspark tools
- session.mcp.url is the MCP endpoint that Autogen will connect to
```python
import asyncio
import os
from dotenv import load_dotenv
from composio import Composio

from autogen_agentchat.agents import AssistantAgent
from autogen_ext.models.openai import OpenAIChatCompletionClient
from autogen_ext.tools.mcp import McpWorkbench, StreamableHttpServerParams

load_dotenv()

async def main():
    # Initialize Composio and create a Sendspark session
    composio = Composio(api_key=os.getenv("COMPOSIO_API_KEY"))
    session = composio.create(
        user_id=os.getenv("USER_ID"),
        toolkits=["sendspark"]
    )
    url = session.mcp.url
```

### 5. Configure MCP parameters for Autogen

Autogen expects parameters describing how to talk to the MCP server. That is what StreamableHttpServerParams is for.
What's happening:
- url points to the Tool Router MCP endpoint from Composio
- timeout is the HTTP timeout for requests
- sse_read_timeout controls how long to wait when streaming responses
- terminate_on_close=True cleans up the MCP server process when the workbench is closed
```python
# Configure MCP server parameters for Streamable HTTP
server_params = StreamableHttpServerParams(
    url=url,
    timeout=30.0,
    sse_read_timeout=300.0,
    terminate_on_close=True,
    headers={"x-api-key": os.getenv("COMPOSIO_API_KEY")}
)
```

### 6. Create the model client and agent

What's happening:
- OpenAIChatCompletionClient wraps the OpenAI model for Autogen
- McpWorkbench connects the agent to the MCP tools
- AssistantAgent is configured with the Sendspark tools from the workbench
```python
# Create model client
model_client = OpenAIChatCompletionClient(
    model="gpt-5",
    api_key=os.getenv("OPENAI_API_KEY")
)

# Use McpWorkbench as context manager
async with McpWorkbench(server_params) as workbench:
    # Create Sendspark assistant agent with MCP tools
    agent = AssistantAgent(
        name="sendspark_assistant",
        description="An AI assistant that helps with Sendspark operations.",
        model_client=model_client,
        workbench=workbench,
        model_client_stream=True,
        max_tool_iterations=10
    )
```

### 7. Run the interactive chat loop

What's happening:
- The script prompts you in a loop with You:
- Autogen passes your input to the model, which decides which Sendspark tools to call via MCP
- agent.run_stream(...) yields streaming messages as the agent thinks and calls tools
- Typing exit, quit, or bye ends the loop
```python
print("Chat started! Type 'exit' or 'quit' to end the conversation.\n")
print("Ask any Sendspark related question or task to the agent.\n")

# Conversation loop
while True:
    user_input = input("You: ").strip()

    if user_input.lower() in ["exit", "quit", "bye"]:
        print("\nGoodbye!")
        break

    if not user_input:
        continue

    print("\nAgent is thinking...\n")

    # Run the agent with streaming
    try:
        response_text = ""
        async for message in agent.run_stream(task=user_input):
            if hasattr(message, "content") and message.content:
                response_text = message.content

        # Print the final response
        if response_text:
            print(f"Agent: {response_text}\n")
        else:
            print("Agent: I encountered an issue processing your request.\n")

    except Exception as e:
        print(f"Agent: Sorry, I encountered an error: {str(e)}\n")
```

## Complete Code

```python
import asyncio
import os
from dotenv import load_dotenv
from composio import Composio

from autogen_agentchat.agents import AssistantAgent
from autogen_ext.models.openai import OpenAIChatCompletionClient
from autogen_ext.tools.mcp import McpWorkbench, StreamableHttpServerParams

load_dotenv()

async def main():
    # Initialize Composio and create a Sendspark session
    composio = Composio(api_key=os.getenv("COMPOSIO_API_KEY"))
    session = composio.create(
        user_id=os.getenv("USER_ID"),
        toolkits=["sendspark"]
    )
    url = session.mcp.url

    # Configure MCP server parameters for Streamable HTTP
    server_params = StreamableHttpServerParams(
        url=url,
        timeout=30.0,
        sse_read_timeout=300.0,
        terminate_on_close=True,
        headers={"x-api-key": os.getenv("COMPOSIO_API_KEY")}
    )

    # Create model client
    model_client = OpenAIChatCompletionClient(
        model="gpt-5",
        api_key=os.getenv("OPENAI_API_KEY")
    )

    # Use McpWorkbench as context manager
    async with McpWorkbench(server_params) as workbench:
        # Create Sendspark assistant agent with MCP tools
        agent = AssistantAgent(
            name="sendspark_assistant",
            description="An AI assistant that helps with Sendspark operations.",
            model_client=model_client,
            workbench=workbench,
            model_client_stream=True,
            max_tool_iterations=10
        )

        print("Chat started! Type 'exit' or 'quit' to end the conversation.\n")
        print("Ask any Sendspark related question or task to the agent.\n")

        # Conversation loop
        while True:
            user_input = input("You: ").strip()

            if user_input.lower() in ['exit', 'quit', 'bye']:
                print("\nGoodbye!")
                break

            if not user_input:
                continue

            print("\nAgent is thinking...\n")

            # Run the agent with streaming
            try:
                response_text = ""
                async for message in agent.run_stream(task=user_input):
                    if hasattr(message, 'content') and message.content:
                        response_text = message.content

                # Print the final response
                if response_text:
                    print(f"Agent: {response_text}\n")
                else:
                    print("Agent: I encountered an issue processing your request.\n")

            except Exception as e:
                print(f"Agent: Sorry, I encountered an error: {str(e)}\n")

if __name__ == "__main__":
    asyncio.run(main())
```

## Conclusion

You now have an Autogen assistant wired into Sendspark through Composio's Tool Router and MCP. From here you can:
- Add more toolkits to the toolkits list, for example notion or hubspot
- Refine the agent description to point it at specific workflows
- Wrap this script behind a UI, Slack bot, or internal tool
Once the pattern is clear for Sendspark, you can reuse the same structure for other MCP-enabled apps with minimal code changes.

## How to build Sendspark MCP Agent with another framework

- [OpenAI Agents SDK](https://composio.dev/toolkits/sendspark/framework/open-ai-agents-sdk)
- [Claude Agent SDK](https://composio.dev/toolkits/sendspark/framework/claude-agents-sdk)
- [Claude Code](https://composio.dev/toolkits/sendspark/framework/claude-code)
- [Claude Cowork](https://composio.dev/toolkits/sendspark/framework/claude-cowork)
- [Codex](https://composio.dev/toolkits/sendspark/framework/codex)
- [OpenClaw](https://composio.dev/toolkits/sendspark/framework/openclaw)
- [Hermes](https://composio.dev/toolkits/sendspark/framework/hermes-agent)
- [CLI](https://composio.dev/toolkits/sendspark/framework/cli)
- [Google ADK](https://composio.dev/toolkits/sendspark/framework/google-adk)
- [LangChain](https://composio.dev/toolkits/sendspark/framework/langchain)
- [Vercel AI SDK](https://composio.dev/toolkits/sendspark/framework/ai-sdk)
- [Mastra AI](https://composio.dev/toolkits/sendspark/framework/mastra-ai)
- [LlamaIndex](https://composio.dev/toolkits/sendspark/framework/llama-index)
- [CrewAI](https://composio.dev/toolkits/sendspark/framework/crew-ai)

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- [ClickSend](https://composio.dev/toolkits/clicksend) - ClickSend is a cloud-based SMS and email marketing platform for businesses. It streamlines communication by enabling quick message delivery and contact management.
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## Frequently Asked Questions

### What are the differences in Tool Router MCP and Sendspark MCP?

With a standalone Sendspark MCP server, the agents and LLMs can only access a fixed set of Sendspark tools tied to that server. However, with the Composio Tool Router, agents can dynamically load tools from Sendspark and many other apps based on the task at hand, all through a single MCP endpoint.

### Can I use Tool Router MCP with Autogen?

Yes, you can. Autogen fully supports MCP integration. You get structured tool calling, message history handling, and model orchestration while Tool Router takes care of discovering and serving the right Sendspark tools.

### Can I manage the permissions and scopes for Sendspark while using Tool Router?

Yes, absolutely. You can configure which Sendspark scopes and actions are allowed when connecting your account to Composio. You can also bring your own OAuth credentials or API configuration so you keep full control over what the agent can do.

### How safe is my data with Composio Tool Router?

All sensitive data such as tokens, keys, and configuration is fully encrypted at rest and in transit. Composio is SOC 2 Type 2 compliant and follows strict security practices so your Sendspark data and credentials are handled as safely as possible.

---
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