Embedded ML Engineer

Irving, TX, US • Posted 9 hours ago • Updated 9 hours ago
Contract W2
Contract Independent
1 Year
On-site
Depends on Experience
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Embedded ML
  • edge ML deployment
  • ONNX
  • TensorFlow Lite
  • computer vision
  • YOLO
  • GPU

Summary

Hi

I hope you're doing well.

We have a position as an " Embedded ML Engineer " with our client. Please find the details below, and if interested, please send me your updated resume in Word format

Role- Embedded ML Engineer

Location- Irving, TX - onsite

Role

Port and optimize a containerized video analytics pipeline to run on CPU-constrained router hardware (Cradlepoint OS, Wi-Fi 7 PrplOS, FWA routers). You'll own the full stack: model optimization, container architecture, and on-device inference performance.

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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

---

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

Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 10217521
  • Position Id: 9103677
  • Posted 9 hours ago
Contact the job poster
Johnson Jose

Johnson Jose

Technical Recruiter @ Ztek Consulting
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