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Remote Machine Learning Runtime Optimization Engineer (Mac/Edge Devices)

  • Job type Posted on: Jul 10, 2026
  • Experience level GrabJobs
  • Employment type Tampa, Florida
  • Employment type Remote
  • Salary Full-time

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Job Title :

Remote Machine Learning Runtime Optimization Engineer (Mac/Edge Devices)

Job Type :

Full-time

Job Location :

Tampa Florida United States

Remote :

Yes

Jobcon Logo Job Description :

We are looking for a Machine Learning Runtime Optimization Engineer to work on an innovative project that redefines software. In this role, you will focus on backend optimizations for ML runtimes, including hardware acceleration, and inference speed improvements. Experience with ML inference engines (ONNX Runtime, TensorRT, CoreML, etc.) and optimizing models for deployment. Proficiency in Mac/Linux-based runtimes and experience with heterogeneous compute environments (CPU/GPU/NPUs). Deep understanding of numerical optimization, compiler techniques, and low-level performance tuning. Open to new graduates with a PhD in optimization, systems, machine learning, or related fields. Autonomous, distributed environment with the opportunity to work collaboratively in a diverse team worldwide. The scope to contribute to high-impact work and make a difference in a decentralized protocol. The chance to challenge yourself while learning heaps of stuff in the process. Unlimited time off throughout the year to rest and recharge. Competitive compensation with stock options, experiencing growth from the initial phase.

Jobcon Logo Position Details

Posted:

Jul 10, 2026

Reference Number:

14660_634D5F48710DC2FF584779CE1C687F09

Employment:

Full-time

Salary:

Not Available

City:

Tampa

Job Origin:

APPCAST_CPC

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We are looking for a Machine Learning Runtime Optimization Engineer to work on an innovative project that redefines software. In this role, you will focus on backend optimizations for ML runtimes, including hardware acceleration, and inference speed improvements. Experience with ML inference engines (ONNX Runtime, TensorRT, CoreML, etc.) and optimizing models for deployment. Proficiency in Mac/Linux-based runtimes and experience with heterogeneous compute environments (CPU/GPU/NPUs). Deep understanding of numerical optimization, compiler techniques, and low-level performance tuning. Open to new graduates with a PhD in optimization, systems, machine learning, or related fields. Autonomous, distributed environment with the opportunity to work collaboratively in a diverse team worldwide. The scope to contribute to high-impact work and make a difference in a decentralized protocol. The chance to challenge yourself while learning heaps of stuff in the process. Unlimited time off throughout the year to rest and recharge. Competitive compensation with stock options, experiencing growth from the initial phase.

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