Senior Machine Learning Engineer

Grid Dynamics

Marbella

Presencial

EUR 60.000 - 90.000

Jornada completa

hace 48 horas
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Descripción de la vacante

Grid Dynamics is seeking a Senior Machine Learning Engineer to lead development of LLM-based systems and evaluation frameworks in Marbella. You will own ML projects end-to-end, designing benchmarks, datasets, and metrics to measure model performance and safety.

You will work with product and engineering teams to translate business goals into measurable ML objectives, apply RAG and agentic techniques, and help shape scalable ML pipelines and tooling.

Formación

  • 5+ years of experience in ML engineering or related field.
  • Strong fundamentals in ML and model evaluation.
  • Expert Python and ML framework experience.
  • Knowledge of RAG, agentic systems and LLM safety concepts.
  • Experience training or fine-tuning models.
  • Experience with LLMs beyond API usage.
  • Ability to translate results into actionable recommendations.
  • Ability to build and maintain ML pipelines and tooling.
  • Strong communication skills.

Responsabilidades

  • Own ML projects from problem definition through implementation.
  • Design and implement evaluation methodologies for AI/ML systems.
  • Create datasets, benchmarks, and metrics to measure performance.
  • Evaluate and improve LLM-based systems including RAG and agents.
  • Analyse model behaviour and identify failure modes.
  • Build and maintain ML pipelines and evaluation infra.
  • Collaborate with product, engineering, and research teams.
  • Prototype and iterate to solve business challenges.
  • Communicate findings and recommendations to stakeholders.

Conocimientos

5+ years
Strong Python
PyTorch
TensorFlow
JAX
RAG concepts
LLM safety concepts
model evaluation
AI systems design
communication skills

Herramientas

PyTorch
TensorFlow
JAX

Descripción del empleo

Descripción del trabajo

We are looking for a talented Senior Machine Learning Engineer - LLM Systems & Evaluation.

This is an opportunity to work on next-generation AI systems, including large language models, retrieval-augmented generation, agents, and AI safety-focused evaluation.

Essential functions
  • Own machine learning projects from problem definition through implementation
  • Design and implement evaluation methodologies for AI and machine learning systems
  • Create datasets, benchmarks, and metrics to measure model and product performance
  • Evaluate and improve LLM-based systems, including RAG applications, agents, safety systems, and end-to-end AI products
  • Analyse model behaviour, identify failure modes, and recommend practical improvements
  • Build and maintain ML pipelines, tooling, and evaluation infrastructure
  • Collaborate with product, engineering, and research teams to translate business goals into measurable ML objectives
  • Prototype and iterate rapidly to solve business and product challenges
  • Communicate findings, trade-offs, and recommendations to both technical and non-technical stakeholders
Qualifications
  • 5+ years of experience in Machine Learning Engineering or a related field.
  • Strong understanding of machine learning fundamentals and model evaluation
  • Strong Python programming skills and experience with modern ML frameworks such as PyTorch, TensorFlow, or JAX
  • Understanding of retrieval-augmented generation (RAG), agentic systems, and LLM safety concepts
  • Experience training, fine-tuning, or adapting machine learning models
  • Experience working with Large Language Models beyond simple API integration
  • Experience evaluating AI systems and translating results into actionable recommendations
  • Experience building and maintaining machine learning systems and pipelines
  • Ability to work effectively in ambiguous problem spaces with incomplete requirements and limited data
  • Strong written and verbal communication skills
Would be a plus
  • Experience designing benchmarks, evaluation frameworks, or automated evaluation systems
  • Experience with distributed training or large-scale model inference
  • Experience building reusable ML tooling and internal platforms
  • Experience with cloud platforms and modern MLOps practices
  • Experience working on user-facing AI products at scale
  • Research experience or publications in machine learning or AI-related fields
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