ML model optimization and deployment on robot edge devices (Jetson, embedded)
Scanned 2/12/2026
Install to Claude Code
npx -y skills add a5c-ai/babysitter --skill edge-deployment --agent claude-codeInstalls into .claude/skills of the current project.
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---
name: Edge Deployment Skill
description: ML model optimization and deployment on robot edge devices (Jetson, embedded)
slug: edge-deployment
category: Deployment
allowed-tools:
- Bash
- Read
- Write
- Edit
- Glob
- Grep
---
# Edge Deployment Skill
## Overview
Expert skill for optimizing and deploying machine learning models on robot edge devices including NVIDIA Jetson and embedded systems.
## Capabilities
- Configure TensorRT optimization for NVIDIA Jetson
- Set up ONNX model conversion and optimization
- Implement INT8 and FP16 quantization
- Configure DeepStream for video analytics
- Set up CUDA graph optimization
- Implement model pruning and distillation
- Configure DLA (Deep Learning Accelerator) deployment
- Set up multi-stream inference
- Implement ROS2 inference nodes
- Profile and benchmark on target hardware
## Target Processes
- nn-model-optimization.js
- object-detection-pipeline.js
- rl-robot-control.js
- field-testing-validation.js
## Dependencies
- TensorRT
- ONNX Runtime
- NVIDIA Jetson SDK
- DeepStream
## Usage Context
This skill is invoked when processes require deploying ML models on edge devices with optimized inference performance.
## Output Artifacts
- TensorRT engine files
- ONNX optimized models
- Quantization configurations
- DeepStream pipeline configs
- Inference benchmark reports
- ROS2 inference node implementations
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