Azure Machine Learning Engineer
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Job description
Are you an Azure Machine Learning Engineer seeking a new interesting challenge?If your answer is yes, it’s your lucky day so keep reading - it can be just what you’re looking for!Expand the scope of Advanced Analytics and AI, enabling use cases that leverage emerging technologies and fostering an innovative environment.Work closely with the Data Scientists of the Advanced Analytics & AI Center of Expertise to design and develop Machine Learning and Generative AI models, collaborating with data engineers and data analysts.Deploy and optimize AI models that leverage large-scale data to deliver predictive and analytical capabilities for the AST&I domains.Build and maintain end-to-end ML pipelines, ensuring model reproducibility, scalability and monitoring aligned with MLOps best practices.Engage in complex long-term projects, focusing on continuous delivery in small increments and contributing to project planning and execution.Engage and guide non-technical stakeholders on Advanced Analytics and Generative AI use cases.Collaborate with multidisciplinary teams and manage multiple stakeholders.Be part of a diverse Agile / Scrum DevOps team with end-to-end responsibility for developing, managing and maintaining functionalities in the AST&I area, prioritized by the Product Owner.Stay curious and up to date with trends in advanced analytics, generative AI and cloud platforms such as Databricks.Python (OOP preferred), PySparkMachine Learning frameworks: Scikit-learn, TensorFlow, PyTorchDatabricks platform toolsMLflow and ML pipeline orchestration toolsGit and CI/CD pipelines for ML models (Azure DevOps / Azure Pipelines)MLOps practices (feature engineering, training, evaluation and deployment)Years’ experience: 5+ years in Machine Learning Engineering or applied ML with a focus on Azure cloud technologiesStrong proficiency in Python, PySpark and modern ML frameworksHands-on experience with the Databricks platformSolid understanding of data preprocessing, feature engineering and model optimizationExperience orchestrating ML pipelines using tools such as MLflow and Azure Machine LearningStrong understanding of ML evaluation metrics and methods including A/B testing and cross-validationExperience with Git and building CI/CD pipelines for ML models, preferably in Azure DevOpsAbility to work with multiple stakeholders in complex environmentsGood to haveFamiliarity with Generative AI models and open-source GenAI frameworks such as LangChainKnowledge of vector databasesExperience with monitoring and logging ML models in productionKnowledge of data governance and compliance for ML use casesDatabricks certificationsWhere and when?Workplace: Madrid (hybrid model)Work Schedule: office hoursPermanent contract - We offer indefinite contracts from the first day.Pay and benefits - Competitive salary and a flexible compensation plan adapted to your needs (Ticket Restaurant, Childcare Ticket, Transport Ticket and Health Insurance).Work from home - Monthly financial support for your working-from-home expenses, plus a welcome bonus in the first month to help you set up your workplace.Opportunity knocks - Career development plan and annual performance-based compensation reviews.Learn as you grow - Fantastic onboarding program and access to robust learning platforms.Bring your buddy - Referral bonus through our BYB Scheme.Connect globally - Work with multicultural teams from all over the world.Benefit from being a TCSer - Corporate discounts and exclusive benefits.And so on - Appreciations, incentives, team building activities, diversity & inclusion programs, sustainability initiatives and corporate events…This has only just begun!#J-*****-Ljbffr
Requirements
responsibility for developing, managing and maintaining functionalities in the AST&I area, prioritized by the Product Owner.Stay curious and up to date with trends in advanced analytics, generative AI and cloud platforms such as Databricks.Python (OOP preferred), PySparkMachine Learning frameworks: Scikit-learn, TensorFlow, PyTorchDatabricks platform toolsMLflow and ML pipeline orchestration toolsGit and CI/CD pipelines for ML models (Azure DevOps / Azure Pipelines)MLOps practices (feature engineering, training, evaluation and deployment)Years’ experience: 5+ years in Machine Learning Engineering or applied ML with a focus on Azure cloud technologiesStrong proficiency in Python, PySpark and modern ML frameworksHands-on experience with the Databricks platformSolid understanding of data preprocessing, feature engineering and model optimizationExperience orchestrating ML pipelines using tools such as MLflow and Azure Machine LearningStrong understanding of ML evaluation metrics and methods including A/B testing and cross-validationExperience with Git and building CI/CD pipelines for ML models, preferably in Azure DevOpsAbility to work with multiple stakeholders in complex environmentsGood to haveFamiliarity with Generative AI models and open-source GenAI frameworks such as LangChainKnowledge of vector databasesExperience with monitoring and logging ML models in productionKnowledge of data governance and compliance for ML use casesDatabricks certificationsWhere and when?
Benefits & conditions
Workplace: Madrid (hybrid model)Work Schedule: office hoursPermanent contract - We offer indefinite contracts from the first day.Pay and benefits - Competitive salary and a flexible compensation plan adapted to your needs (Ticket Restaurant, Childcare Ticket, Transport Ticket and Health Insurance). Work from home - Monthly financial support for your working-from-home expenses, plus a welcome bonus in the first month to help you set up your workplace.Opportunity knocks - Career development plan and annual performance-based compensation reviews.Learn as you grow - Fantastic onboarding program and access to robust learning platforms.Bring your buddy - Referral bonus through our BYB Scheme.Connect globally - Work with multicultural teams from all over the world.Benefit from being a TCSer - Corporate discounts and exclusive benefits.And so on - Appreciations, incentives, team building activities, diversity & inclusion programs, sustainability initiatives and corporate events… This has only just begun! #J-*****-Ljbffr
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