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Team Up Services

AI Engineer

Posted a day ago
Worldwide
€4000 per month
2-5 years experience
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AI Summary

Design, develop, and deploy scalable machine learning and AI systems for real-world applications. Manage data pipelines, optimize custom models, and maintain MLOps workflows using cloud platforms.

This is a remote position.

We are looking for a Machine Learning / AI Engineer to design, develop, and deploy AI systems that solve real-world problems at scale. The ideal candidate combines strong machine learning fundamentals with hands-on production experience, strong engineering skills, and the ability to work independently in an evolving environment.


Your Duties

  • Design, develop, and deploy machine learning and AI systems for real-world applications.
  • Build and optimize custom AI models for domain-specific tasks.
  • Design and maintain data mining, data preprocessing, and data-labeling pipelines.
  • Work with large datasets, including feature engineering and data preparation.
  • Apply machine learning techniques across areas such as LLMs, NLP, computer vision, or other AI domains.
  • Train, evaluate, optimize, and improve machine learning models.
  • Develop and maintain model deployment and MLOps pipelines.
  • Deploy and serve models using cloud platforms and containerized environments.
  • Use tools such as Docker, Git, and relevant MLOps platforms in collaborative development workflows.
  • Analyze model performance and identify opportunities for improvement.
  • Communicate technical concepts and project progress to non-technical stakeholders.


Requirements


  • 2–5 years of hands-on experience building and deploying ML/AI models in production environments.
  • Strong proficiency in Python.
  • Practical experience with PyTorch and/or TensorFlow.
  • Experience designing and architecting custom AI models.
  • Experience with LLMs, NLP, computer vision, or other AI domains.
  • Strong understanding of supervised and unsupervised learning, deep learning architectures, optimization, and evaluation metrics.
  • Experience with data preprocessing, feature engineering, data mining, and data-labeling pipelines.
  • Familiarity with MLOps tools and model deployment platforms such as MLflow, Kubeflow, or SageMaker.
  • Knowledge of cloud platforms and services used for model training and serving, such as AWS Lambda.
  • Experience with Docker and containerized model deployment.
  • Familiarity with Git and collaborative software development practices.
  • Strong analytical and problem-solving skills.
  • Ability to communicate complex technical concepts to non-technical stakeholders.
  • Curiosity-driven mindset and comfort working with ambiguity.

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