New Architecture Combines OpenClaw and Ollama for AI Agents
Researchers have presented a layered architecture for autonomous AI agents that combines OpenClaw and Ollama to separate inference from orchestration.

What happened?
A new research paper presented on arXiv describes a layered architecture for agent-based AI. The system divides the infrastructure into separate layers for inference, orchestration, and execution. In the studied model, Ollama functions as the inference layer for language models, while OpenClaw handles the agent's runtime, reasoning, tool usage, and actions.
Key facts
| Forskningspapper | arXiv:2607.28629 |
|---|---|
| Inferenslager | Ollama |
| Orkestreringslager | OpenClaw |
Why it matters
The transition from reactive language models to persistent and goal-driven AI agents requires clear frameworks. By separating orchestration and runtime from the model itself, planning, memory management, and continuous execution in complex AI systems are facilitated.
Who is affected?
The architecture is primarily relevant to system developers, AI researchers, and engineers who build autonomous agent-based systems and are seeking frameworks for structuring runtime and inference layers.
What else you should know
The researchers emphasize that the separation between inference and orchestration layers is crucial for the scalability of autonomous AI systems. The experimental prototype is used to evaluate performance and functionality in full-stack architectures.
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- Assess technical risk: model choice, vendor lock-in, data flow and running cost.
- Update the architecture doc if new APIs or regulations touch production.
- Ensure observability + rollback plan before rolling out to production.
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