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Embedded Computer Vision Engineer

TechDigital CorporationIrving, TX🇺🇸United StatesPosted Sep 15, 2026

Why This Role Stands Out

This hybrid role at TechDigital Corporation offers an exciting opportunity to push the boundaries of embedded computer vision, optimizing cutting-edge AI models for CPU-only environments and developing innovative containerized architectures. You'll thrive here if you possess strong experience in embedded ML deployment, model optimization, and C/C++ development, eager to make a significant impact on the future of edge computing. Embrace the challenge of working with constrained hardware and contribute to a dynamic technology leader.

Quick Overview

Seniority
Mid Senior
Work mode
Hybrid
Location
Irving, TX, United States
Posted
Yesterday
DockerEmbedded SystemsComputer VisionC++PythonTensorFlow

Job Description

What You'll Do
- Port GPU-based video analytics models (object detection, classification) to CPU-only router targets
- Optimize inference pipeline to stay under 100MB memory footprint using SLMs
- Build containerized architecture with dynamic cloud-driven model loading
- Tune accuracy/performance tradeoffs on ARM/MIPS router hardware
- Integrate with Cradlepoint OS and PrplOS environments
- Benchmark and iterate on detection accuracy vs. latency on constrained hardware
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Required
- 4+ years in embedded systems or edge ML deployment
- Experience with containerization (Docker, LXC) on constrained devices
- ML model optimization: quantization, pruning, ONNX, TensorFlow Lite, OpenVINO
- Video analytics / computer vision (YOLO variants, object detection pipelines)
- Python + C/C++ on Linux embedded targets
- Cross-compilation, profiling, and memory optimization
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Strong Plus
- Cradlepoint NetCloud / PrplOS / OpenWRT experience
- NPU/DSP acceleration on router-class SoCs
- DeepStream or similar inference pipeline experience (GPU→CPU migration)
- SLM deployment (sub-1B parameter models on edge)
- RTSP/video streaming on embedded Linux
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You Are
- Comfortable with no GPU — CPU-only inference is the constraint, not a fallback
- Pragmatic about accuracy tradeoffs at the edge
- Experienced navigating vendor OS lock-in and limited debugging toolchains

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