Compatible with every major AI agent and IDE
What is the Together AI Alternative MCP Server?
Connect Together AI to your AI agent to leverage the world's fastest inference cloud for open-source models. This server provides a comprehensive suite of tools for generative AI, from text and image creation to advanced fine-tuning and batch processing.
What you can do
- Inference & Chat — Generate high-quality responses using models like Llama 3.3, Qwen, and Mixtral via chat or text completions.
- Media Generation — Create stunning images and videos from text prompts using state-of-the-art models like Flux and Stable Diffusion.
- Audio Services — Convert text to speech (TTS) or transcribe audio files (STT) with speaker identification.
- Advanced RAG — Generate vector embeddings and rerank documents to build high-performance search and retrieval systems.
- Model Management — Manage fine-tuning jobs, dedicated endpoints, and file uploads for custom model training.
- Batch Processing — Handle large-scale asynchronous workloads efficiently using the Batch API.
How it works
- Subscribe to this server
- Enter your Together AI API Key
- Start building with the most powerful open-source models directly from your MCP-compatible client
Who is this for?
- AI Developers — integrate cutting-edge LLMs and image models into your applications without managing infrastructure
- Data Scientists — fine-tune models on custom datasets and manage checkpoints seamlessly
- Product Teams — prototype and scale AI features using a unified, high-performance API
Built-in capabilities (27)
Cancel a running batch job
Text-to-Speech (TTS) generation
Transcriptions (STT) from audio file
Create a new asynchronous batch job
3-70B-Instruct-Turbo. Generate a model response for a given chat conversation
Turn text into vector embeddings
Create a dedicated endpoint for predictable performance
Create a fine-tuning job
Generate images from text prompts
Reorder documents by relevance to a query
Generate text completions for a given prompt
Create videos from text or image prompts
Delete a dedicated endpoint
Delete an uploaded file
Delete a fine-tuning job
Get details of a specific batch job
Get details of a specific dedicated endpoint
Retrieve metadata for a specific file
Get details of a specific fine-tuning job
List all batch jobs
List all dedicated endpoints
List all uploaded files
List checkpoints for a fine-tuning job
List all fine-tuning jobs
List all available models on Together AI
Update a dedicated endpoint (Start/Stop/Scale)
Upload a file for fine-tuning, evals, or batch inference
Why CrewAI?
When paired with CrewAI, Together AI Alternative becomes a first-class tool in your multi-agent workflows. Each agent in the crew can call Together AI Alternative tools autonomously, one agent queries data, another analyzes results, a third compiles reports, all orchestrated through Vinkius with zero configuration overhead.
- —
Multi-agent collaboration lets you decompose complex workflows into specialized roles, one agent researches, another analyzes, a third generates reports, each with access to MCP tools
- —
CrewAI's native MCP integration requires zero adapter code: pass Vinkius Edge URL directly in the
mcpsparameter and agents auto-discover every available tool at runtime - —
Built-in task delegation and shared memory mean agents can pass context between steps without manual state management, enabling multi-hop reasoning across tool calls
- —
Sequential and hierarchical crew patterns map naturally to real-world workflows: enumerate subdomains → analyze DNS history → check WHOIS records → compile findings into actionable reports
Together AI Alternative in CrewAI
Together AI Alternative and 4,000+ other MCP servers. One platform. One governance layer.
Teams that connect Together AI Alternative to CrewAI through Vinkius don't need to source, host, or maintain individual MCP servers. Every tool call runs inside a hardened runtime with credential isolation, DLP, and a signed audit chain.
Raw MCP | Vinkius | |
|---|---|---|
| Server catalog | Find and host yourself | 4,000+ managed |
| Infrastructure | Self-hosted | Sandboxed V8 isolates |
| Credential handling | Plaintext in config | Vault + runtime injection |
| Data loss prevention | None | Configurable DLP policies |
| Kill switch | None | Global instant shutdown |
| Financial circuit breakers | None | Per-server limits + alerts |
| Audit trail | None | Ed25519 signed logs |
| SIEM log streaming | None | Splunk, Datadog, Webhook |
| Honeytokens | None | Canary alerts on leak |
| Custom domains | Not applicable | DNS challenge verified |
| GDPR compliance | Manual effort | Automated purge + export |
Why teams choose Vinkius for Together AI Alternative in CrewAI
The Together AI Alternative MCP Server runs on Vinkius-managed infrastructure inside AWS — a purpose-built runtime with per-request V8 isolates, Ed25519 signed audit chains, and sub-40ms cold starts. All 27 tools execute in hardened sandboxes optimized for native MCP execution.
Your AI agents in CrewAI only access the data you authorize, with DLP that blocks sensitive information from ever reaching the model, kill switch for instant shutdown, and up to 60% token savings. Enterprise-grade infrastructure, zero maintenance.

* Every MCP server runs on Vinkius-managed infrastructure inside AWS - a purpose-built runtime with per-request V8 isolates, Ed25519 signed audit chains, and sub-40ms cold starts optimized for native MCP execution. See our infrastructure
How Vinkius secures
Together AI Alternative for CrewAI
Every tool call from CrewAI to the Together AI Alternative MCP Server is protected by DLP redaction, cryptographic audit chains, V8 sandbox isolation, kill switch, and financial circuit breakers.
Frequently asked questions
How do I generate a chat response using a specific model like Llama 3.3?
Use the create_chat_completion tool. Specify the model name (e.g., 'meta-llama/Llama-3.3-70B-Instruct-Turbo') and provide an array of messages. The agent will return the generated response from the model.
Can I create images from text prompts with this server?
Yes! Use the create_image_generation tool. You can specify the model, the prompt description, and optional parameters like width, height, and steps to get high-quality visual outputs.
How can I check the status of my asynchronous batch jobs?
You can use list_batches to see all your current batch jobs or get_batch with a specific Job ID to retrieve detailed status and results for a particular task.
How does CrewAI discover and connect to MCP tools?
CrewAI connects to MCP servers lazily. when the crew starts, each agent resolves its MCP URLs and fetches the tool catalog via the standard tools/list method. This means tools are always fresh and reflect the server's current capabilities. No tool schemas need to be hardcoded.
Can different agents in the same crew use different MCP servers?
Yes. Each agent has its own mcps list, so you can assign specific servers to specific roles. For example, a reconnaissance agent might use a domain intelligence server while an analysis agent uses a vulnerability database server.
What happens when an MCP tool call fails during a crew run?
CrewAI wraps tool failures as context for the agent. The LLM receives the error message and can decide to retry with different parameters, fall back to a different tool, or mark the task as partially complete. This resilience is critical for production workflows.
Can CrewAI agents call multiple MCP tools in parallel?
CrewAI agents execute tool calls sequentially within a single reasoning step. However, you can run multiple agents in parallel using process=Process.parallel, each calling different MCP tools concurrently. This is ideal for workflows where separate data sources need to be queried simultaneously.
Can I run CrewAI crews on a schedule (cron)?
Yes. CrewAI crews are standard Python scripts, so you can invoke them via cron, Airflow, Celery, or any task scheduler. The crew.kickoff() method runs synchronously by default, making it straightforward to integrate into existing pipelines.
MCP tools not discovered
Ensure the Edge URL is correct. CrewAI connects lazily when the crew starts. check console output.
Agent not using tools
Make the task description specific. Instead of "do something", say "Use the available tools to list contacts".
Timeout errors
CrewAI has a 10s connection timeout by default. Ensure your network can reach the Edge URL.
Rate limiting or 429 errors
Vinkius enforces per-token rate limits. Check your subscription tier and request quota in the dashboard. Upgrade if you need higher throughput.
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