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Oferta verificada hace 19 horas

AI Systems Engineer (LLM RAG Optimization)

Airbus·Madrid
Salario no indicado
Resumen Vox
  • Rol del puesto: Optimizar sistemas de IA generativa, desplegar modelos grandes, gestionar infraestructura multi-GPU y asegurar rendimiento y precisión en entornos militares.
  • Requisitos clave: Experiencia en ingeniería de ML/NLP, despliegue de LLMs, programación en Python, arquitecturas RAG, optimización de recursos y conocimientos en entornos seguros y contenedorizados.
  • Condiciones y beneficios: Trabajo híbrido, salario atractivo, días libres adicionales, beneficios sociales, instalaciones en sitio, oportunidades de desarrollo y participación en iniciativas sociales.
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Descripción de la oferta

Job Description Airbus Defence Space is looking for an LLM Inference Engineer to optimize the efficiency and scalability of Generative AI systems. The selected candidate will join the Architecture Integration team at CLAEX in Torrejón de Ardoz Air Base with the goal of optimizing the deployment and performance of Large Language Models (LLMs). Their mission will be to ensure that AI systems are fast accurate and capable of serving multiple simultaneous users laying the groundwork for future evolution toward training and fine-tuning open models. We are looking for an ML Engineer with a hybrid focus on applied Artificial Intelligence and high-performance system optimization. We are not just looking for someone who uses models but for an expert capable of squeezing the maximum potential out of hardware (GPUs) to deliver high-quality responses with the lowest possible latency. Key Responsibilities - Model Serving Optimization Design and manage the deployment of Large Language Models (LLMs) optimizing memory usage and responsiveness for high-demand environments. - RAG (Retrieval-Augmented Generation) System Architecture Design and refine workflows that enable AI to accurately query private information managing everything from document ingestion to intelligent data retrieval. - Multi-GPU High-Performance Management Configure and optimize workload distribution across multiple GPUs to maximize processing speed and user concurrency. - Quality and Accuracy Assurance Implement evaluation methodologies to reduce hallucinations improve response relevance and ensure the AI is a reliable tool for the end user. - Data Pipeline Development Create efficient processes for transforming complex documents (PDF OCR etc.) into formats optimized for AI learning and querying. - Service and API Exposure Develop standardized and secure communication interfaces to integrate AI capabilities with other applications and user platforms. - Technological Evolution Research and prepare the infrastructure for future phases involving training quantization and model adaptation to specific needs. Requirements - Solid experience (3+ years) in Machine Learning Engineering Natural Language Processing (NLP) or Applied AI. - Degree in Computer Telecomunications Maths or Software Engineering. - Hands-on experience in the deployment and productionization of Large Language Models (LLMs). - Advanced proficiency in Python. - Proven experience building information retrieval architectures (RAG systems) and vector databases. - Demonstrated ability to optimize computing resources (GPU/CPU/Memory) to enhance AI system performance. - B2 level in English. Preferred Qualifications - Military Avionics and embedded/Real Time Software knowledge is desirable. This is useful since the LLM training and inference is targeted at supporting Military Avionics development and most of the task would be related to military Avionics. - Experience working with large-scale models. - Knowledge of model optimization techniques (quantization model weight reduction). - Experience managing very large information contexts (long-context windows). - Knowledge of containerized environments (Kubernetes) and high-security (air-gapped) environments. - Previous experience in fine-tuning or training language models. WHICH BENEFITS WILL YOU HAVE AS AIRBUS EMPLOYEE At Airbus we are focused on our employees and their welfare. Take a look at some of our social benefits - Vacation days plus additional days-off along the year. - Attractive salary. - Hybrid model of working when possible promoting the work-life balance. - Collective transport service in some sites. - Benefits such as health insurance employee stock options retirement plan or study grants. - On-site facilities (among others) free canteen kindergarten medical office. - Possibility to collaborate in different social and corporate social responsibility initiatives. - Excellent upskilling opportunities and great development prospects in a multicultural environment. - Special rates in products benefits. This job requires an awareness of any potential compliance risks and a commitment to act with integrity as the foundation for the Companys success reputation and sustainable growth.

Panel de transparencia

Fuente original
tecnoempleo
Publicada
23 jun 2026 · fecha real
Última verificación
hace 19 horas
Puntuación de calidad
35/100
Salario indicado0
Empresa identificada0
applyUrl0
postedAt15
Descripción completa20

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