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Edge Deployment Engineer (AI & Embedded Systems)

Relocation
This Job is No Longer Active This position is no longer accepting applications
AI Summary

Join a European deep-tech leader in quantum and AI as an Edge Deployment Engineer. You will bridge the gap between AI research and efficient execution, optimising and deploying machine learning models onto resource-constrained devices.

Key Highlights
Optimise and deploy machine learning models onto resource-constrained devices
Implement and optimise deep-learning models for edge hardware
Reduce model size and latency using compression/quantisation
Technical Skills Required
Python C C++ TensorRT vLLM Git ARM processors mobile GPUs AI accelerators
Benefits & Perks
Competitive salary
Signing bonus
Retention bonus
Flexible working hours
Relocation package available
Equal pay, diversity, and inclusive culture

Job Description


Edge Deployment Engineer (AI & Embedded Systems) | AI Start-up | fixed-term Contract


Join a European deep-tech leader in quantum and AI.


A well-funded, fast-growing company backed by major global investors with its groundbreaking technology is already transforming AI, compressing large language models by up to 95% and cutting inference costs by 50–80%.

This is your chance to be part of a team often described as a “quantum-AI unicorn in the making.”


This is a Hybrid opportunity in Barcelona or Zaragoza. It is a fixed-term contract to work until 30th June 2026


What You'll Do:

As an Edge Deployment Engineer, you will be instrumental in bridging the gap between cutting-edge AI research and efficient, real-world execution. You will specialise in optimising and deploying highly compressed Machine Learning and Large Language Models onto resource-constrained, low-latency devices.


As a Quality Control Engineer, you will:

  • Implement and optimise deep-learning models for edge hardware.
  • Reduce model size and latency using compression/quantisation.
  • Work hands-on with embedded systems and systems programming.
  • Utilise key inference optimisation frameworks (e.g., TensorRT, vLLM).
  • Write high-performance code in Python, C, or C++.
  • Conduct performance profiling on diverse embedded architectures (ARM, GPUs).
  • Integrate ML models into final products through team collaboration.
  • Maintain development standards: Git, testing, and CI/CD pipelines.


Required Qualifications

  • Bachelor’s degree or higher in Computer Science, Electrical Engineering, Physics, or related field; or equivalent industry experience
  • 3–5 years of hands-on experience in embedded systems, firmware development, or systems programming
  • Demonstrated experience optimizing machine learning models for deployment on constrained devices
  • Strong proficiency in Python, C, or C++; experience with system-level programming languages is essential
  • Solid understanding of quantization techniques and model compression strategies Experience with inference optimization frameworks (TensorRT, ONNX Runtime, LLM, vLLM, or equivalent)
  • Familiarity with embedded architectures: ARM processors, mobile GPUs, and AI accelerators
  • Strong fundamentals in computer architecture, memory management, and performance optimization
  • Experience with version control (Git), testing frameworks, and CI/CD pipelines
  • Excellent communication and collaboration skills in cross-functional teams


Preferred Qualifications

  • Master’s degree in Computer Science, Electrical Engineering, or related field
  • Hands-on experience with large language model inference and deployment
  • Experience optimizing neural networks using mixed-precision computation or dynamic quantization
  • Familiarity with edge computing frameworks such as NVIDIA’s Triton Inference Server or similar platforms
  • Background in mobile or IoT development
  • Knowledge of hardware acceleration techniques and specialized instruction sets (SIMD, NPU-specific optimizations)
  • Contributions to open-source embedded AI or ML optimization projects
  • Experience with real-time operating systems or embedded Linux environments


Perks & Benefits:

  • Compensation: Competitive salary, with a signing bonus and a retention bonus at the end of the contract.
  • Flexibility: This is a hybrid role with flexible working hours. A relocation package is available if needed.
  • Culture: We are a fast-scaling company committed to equal pay, diversity, and an inclusive culture. You'll gain international exposure in a multicultural, cutting-edge environment.


Interested? Apply directly through LinkedIn, or send your CV to [email protected]


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