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MLOps Engineer; Technical

Trabajo disponible en: 50197, Zaragoza, Aragon, España
Empresa: Hyperproof
Contrato puesto
Publicado en 2026-02-07
Especializaciones laborales:
  • TI/Tecnología
    Ingeniero de IA, Machine Learning, Ingeniero de datos, Científico de datos
Rango Salarial o Referencia de la Industria: 55000 EUR Anual EUR 55000.00 YEAR
Descripción del trabajo
Puesto: MLOps Engineer (Fixed-term contract) Technical

MLOps Engineer (Fixed-term contract)

We are looking to fill this role immediately and are reviewing applications daily. Expect a fast, transparent process with quick feedback.

Why join us?

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 starting from €55,000, based on experience and qualifications.
  • 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 MLOps Engineer, you will:

  • Deploy cutting-edge ML/LLMs models to Fortune Global 500 clients.
  • Join a world-class team of Quantum experts with an extensive track record in both academia and industry.
  • Collaborate with the founding team in a fast-paced startup environment.
  • Design, develop, and implement Machine Learning (ML) and Large Language Model (LLM) pipelines, encompassing data acquisition, preprocessing, model training and tuning, deployment, and monitoring.
  • Employ automation tools such as Git Ops, CI/CD pipelines, and containerization technologies (Docker, Kubernetes) to enhance ML/LLM processes throughout the Large Language Model lifecycle.
  • Establish and maintain comprehensive monitoring and alerting systems to track Large Language Model performance, detect data drift, and monitor key metrics, proactively addressing any issues.

    Conduct truth analysis to evaluate the accuracy and effectiveness of Large Language Model outputs against known, accurate data.
  • Collaborate closely with Product and Dev Ops teams and Generative AI researchers to optimize model performance and resource utilization.
  • Manage and maintain cloud infrastructure (e.g., AWS, Azure) for Large Language Model workloads, ensuring both cost-efficiency and scalability.
  • Stay updated with the latest developments in ML/LLM Ops, integrating these advancements into generative AI platforms and processes.
  • Communicate effectively with both technical and non-technical stakeholders, providing updates on Large Language Model performance and status.

Required Qualification

  • Bachelor's or master's degree in computer science, Engineering, or a related field.
  • Mid or Senior: 3+ years of experience as an ML/LLM engineer in public cloud platforms.
  • Proven experience in MLOps, LLMOps, or related roles, with hands‑on experience in managing machine/deep learning and large language model pipelines from development to deployment and monitoring.
  • Expertise in cloud platforms (e.g., AWS, Azure) for ML workloads, MLOps, Dev Ops, or Data Engineering.
  • Expertise in model parallelism in model training and serving, and data parallelism/hyperparameter tuning.
  • Proficiency in programming languages such as Python, distributed computing tools such as Ray, model parallelism frameworks such as Deep Speed, Fully Sharded Data Parallel (FSDP), or Megatron LM.
  • Expertise in generative AI applications and domains, including content creation, data augmentation, and style transfer.
  • Strong understanding of Generative AI architectures and methods, such as chunking, vectorization, context-based retrieval and search, and working with Large Language Models like OpenAI GPT 3.5/4.0, Llama 2, Llama 3, Mistral, etc.
  • Experience with Azure Machine Learning, Azure Kubernetes Service, Azure Cycle Cloud, Azure Managed Lustre.
  • Experience with Perfect English;
    Spanish is a plus.
  • Great communication skills and a passion for working collaboratively in an international environment.

Preferred Qualifications

  • Experience in training “Mixture‑of‑Experts.”
  • Experience working with…
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