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Machine learning engineer (zaragoza y barcelona) (temporal)

Zamora (49001)
Temporal
thexpeople
Publicada el 10 diciembre
Descripción

We are a European deep-tech leader in quantum and AI, backed by major global strategic investors and strong EU support. Our groundbreaking technology is already transforming how AI is deployed worldwide — compressing large language models by up to 95% without losing accuracy and cutting inference costs by 50–80%.Joining us means working on cutting-edge solutions that make AI faster, greener, and more accessible — and being part of a company often described as a “quantum-AI unicorn in the making.”We offer- Competitive annual salary.- Two unique bonuses: signing bonus at incorporation and retention bonus at contract completion.- Relocation package (if applicable).- Fixed-term contract ending in June 2026.- Hybrid role and flexible working hours.- Be part of a fast-scaling Series B company at the forefront of deep tech.- Equal pay guaranteed.- International exposure in a multicultural, cutting-edge environment.As a Machine Learning Engineer, you will- Design and develop new techniques to compress Large Language Models based on quantum-inspired technologies to solve challenging use cases in various domains.- Conduct rigorous evaluations and benchmarks of model performance, identifying areas for improvement, and fine-tuning and optimising LLMs for enhanced accuracy, robustness, and efficiency.- Build LLM based applications such as RAG and AI agents.- Use your expertise to assess the strengths and weaknesses of models, propose enhancements, and develop novel solutions to improve performance and efficiency.- Act as a domain expert in the field of LLMs, understanding domain-specific problems and identifying opportunities for quantum AI-driven innovation.- Design, train and deliver custom deep learning models for our clients- Work in diverse areas beyond LLM, e.G., computer vision.- Maintain comprehensive documentation of LLM development processes, experiments, and results.- Share your knowledge and expertise with the team to foster a culture of continuous learning, guiding junior members of the team in their technical growth and helping them develop their skills in LLM development.- Participate in code reviews and provide constructive feedback to team members.- Stay up to date with the latest advancements and emerging trends in LLMs and recommend new tools and technologies as appropriate.Required Qualifications- Bachelor's, Master's or Ph.D. in Artificial Intelligence, Computer Science, Data Science, or related fields.- 2+ years of hands-on experience with designing, training or fine-tuning deep learning models, preferably working with transformer or computer vision models.- 2+ year of hands-on experience using transformer models, with excellent command of libraries such as HuggingFace Transformers, Accelerate, Datasets, etc."- Solid mathematical foundations and theoretical understanding of deep learning algorithms and neural networks, both training and inference.- Excellent problem-solving, debugging, performance analysis, test design, and documentation skills.- Strong understanding with the fundamentals of GPU architectures and and LLM hardware/ software infrastructures.- Excellent programming skills in Python and experience with relevant libraries (PyTorch, HuggingFace, etc.).- Experience with cloud platforms (ideally AWS), containerization technologies (Docker) and with deploying AI solutions in a cloud environment- Excellent written and verbal communication skills, with the ability to work collaboratively in a fast-paced team environment and communicate complex ideas effectively.- Previous research publications in deep learning or any tech field is a plus- Fluent in EnglishPreferred Qualifications- Experience running large-scale workloads in high-performance computing (HPC) clusters.- Experience in handling large datasets and ensuring data quality.- Experience with inference and deployment environments (TensorRT, vLLM, etc.).- Experience in accuracy evaluation of LLMs (OpenLLM Leaderboard).- Experience building and evaluating RAG systems.- Experience in building non-LLM deep learning applications, e.G., computer vision, audio or signal processing.- Familiarity with AI ethics and responsible AI practices.- Experience in DevOps/MLOps practices in deep learning product development.

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Inicio > Empleo > Machine Learning Engineer (Zaragoza Y Barcelona) (Temporal)

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