Senior Machine Learning Engineer

Epam Systems
Madrid, Spain
1 day ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Working hours
Regular working hours

Tech stack

Artificial Intelligence Unit Testing Code Review Computer Programming Data Cleansing Software Debugging DevOps Python (Programming Language) Machine Learning Tensorflow Software Organization Cloud Platform System
+13 more
Feature Engineering Pytorch Retrieval-Augmented Generation Large Language Models Multi-Agent Systems Deep Learning Model Validation Scikit Learn Kubernetes Information Technology Machine Learning Operations Virtual Agents Software Version Control

Job description

We’re 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 world’s most renowned wealth management organizations.ResponsibilitiesDesign, develop, deploy, and optimize machine learning and AI solutions addressing complex business challengesBuild and integrate multi-agent systems and enable AI models with function/tool calling capabilitiesDesign and maintain RAG (Retrieval-Augmented Generation) systems to ground AI outputs in enterprise dataIntegrate and fine-tune Large Language Models (LLMs) to ensure performance, consistency, and reliabilityOptimize agentic workflows for production use cases while ensuring safety and accuracyEvaluate and improve system performance using robust metrics, evaluation sets, and continuous iterationCollaborate with data engineers, platform teams, and data scientists to integrate ML solutions into enterprise systemsConduct code reviews, unit testing, and debugging to guarantee quality and maintainabilityEnsure compliance with software development best practices across version control, testing, and documentationRequirementsBachelor’s or Master’s degree in Data Science, Computer Science, Mathematics, Statistics, or related fieldProven experience as a Machine Learning Engineer or similar role in AI solution developmentStrong programming skills in Python, experience with ML libraries and deep learning frameworks (TensorFlow or PyTorch)Practical experience implementing and deploying LLMs and related orchestration frameworksKnowledge of agentic workflows, multi-agent systems, and advanced reasoning patternsStrong understanding of data preprocessing, feature engineering, and model evaluation techniquesDeep familiarity with relevant mathematical and statistical concepts (probability, linear algebra, optimization)Experience implementing MLOps practices and working in DevOps-based environmentsExcellent problem-solving, debugging, and optimization skillsStrong communication and ability to collaborate with cross-functional teams in an agile environmentNice to haveExperience designing RAG systems for enterprise-scale usePrior exposure to AI governance, security, or compliance in financial servicesFamiliarity with cloud infrastructures and containerized ML deployments using KubernetesProven track record of enabling AI-driven applications in production environments#J-*****-Ljbffr

Requirements

Bachelor’s or Master’s 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 #J-*****-Ljbffr

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