Senior Machine Learning Engineer, Hibrido

Epam

Madrid

Híbrido

EUR 70.000 - 110.000

Jornada completa

hace 37 horas
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Descripción de la vacante

Epam is seeking a Senior Machine Learning Engineer to join our Madrid team in a hybrid role. You will design, build, and deploy scalable ML and AI solutions for a leading financial client, spanning concept to production in an Agile DevOps environment, collaborating with cross-functional teams to deliver robust AI systems.

Responsibilities include rapid prototyping, integrating LLMs, RAG, and multi-agent workflows, evaluating models with robust metrics, and ensuring safety and reliability in

Formación

  • Bachelors or Masters in Data Science, Computer Science, Mathematics, Statistics or related field.
  • Proven experience as a Machine Learning Engineer or similar role in AI solution development.
  • Strong Python programming with ML libraries like TensorFlow or PyTorch.

Responsabilidades

  • Design, develop, deploy, and optimize ML/AI solutions for enterprise challenges.
  • Build and integrate multi-agent systems and enable function/tool calling for AI models.
  • Design and maintain RAG systems to ground outputs in enterprise data.

Conocimientos

Python
TensorFlow
PyTorch
MLOps
LLMs
Kubernetes

Educación

Bachelor's or Master's in Data Science/CS/Math/Statistics

Descripción del empleo

Senior Machine Learning Engineer, hibrido EPAM Madrid, España

Senior Machine Learning Engineer Were looking for a Senior ML Engineer to join our team in Madrid, Spain in a hybrid working mode. In this role, you will design, build, and deploy scalable machine learning and AI solutions that power next-generation digital capabilities within a leading global financial institution. You will work across the full lifecycle - from concept and prototyping to production - in an agile and DevOps-oriented environment, collaborating with multi-disciplinary teams to deliver robust, business-critical AI systems. If you are passionate about Large Language Models, multi-agent workflows, and advanced ML engineering practices, this is an opportunity to shape AI-driven innovation within one of the worlds most renowned wealth management organizations.

Responsibilities
  • Design, develop, deploy, and optimize machine learning and AI solutions addressing complex business challenges
  • Build and integrate multi-agent systems and enable AI models with function/tool calling capabilities
  • Design and maintain RAG (Retrieval-Augmented Generation) systems to ground AI outputs in enterprise data
  • Integrate and fine-tune Large Language Models (LLMs) to ensure performance, consistency, and reliability
  • Optimize agentic workflows for production use cases while ensuring safety and accuracy
  • Evaluate and improve system performance using robust metrics, evaluation sets, and continuous iteration
  • Collaborate with data engineers, platform teams, and data scientists to integrate ML solutions into enterprise systems
  • Conduct code reviews, unit testing, and debugging to guarantee quality and maintainability
  • Ensure compliance with software development best practices across version control, testing, and documentation
Requirements
  • Bachelors or Masters degree in Data Science, Computer Science, Mathematics, Statistics, or related field
  • Proven experience as a Machine Learning Engineer or similar role in AI solution development
  • Strong programming skills in Python, experience with ML libraries and deep learning frameworks (TensorFlow or PyTorch)
  • Practical experience implementing and deploying LLMs and related orchestration frameworks
  • Knowledge of agentic workflows, multi-agent systems, and advanced reasoning patterns
  • Strong understanding of data preprocessing, feature engineering, and model evaluation techniques
  • Deep familiarity with relevant mathematical and statistical concepts (probability, linear algebra, optimization)
  • Experience implementing MLOps practices and working in DevOps-based environments
  • Excellent problem-solving, debugging, and optimization skills
  • Strong communication and ability to collaborate with cross-functional teams in an agile environment
  • Nice to have Experience designing RAG systems for enterprise-scale use
  • Prior exposure to AI governance, security, or compliance in financial services
  • Familiarity with cloud infrastructures and containerized ML deployments using Kubernetes
  • Proven track record of enabling AI-driven applications in production environments

Machine Learning, RAG, LLM, Python

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