Machine Learning Engineer

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Tether.to

πŸ“Remote - Worldwide

Job highlights

Summary

Join Tether's dynamic Brain & AI team as a Machine Learning Engineer and contribute to groundbreaking research at the intersection of artificial intelligence and brain-computer interface technologies. You will develop and evaluate scalable deep learning algorithms for brain decoding, collaborate with data scientists on generative modeling and representation learning, and optimize AI model performance across various computing environments. This role requires strong Python programming skills, experience with deep learning techniques, and proficiency in managing unstructured datasets. Tether offers a remote work environment and the opportunity to collaborate with a global team of talented professionals.

Requirements

  • Strong programming skills in Python, with experience in developing machine learning algorithms or infrastructure using Python and PyTorch
  • Experience in deep learning techniques such as supervised, semi-supervised, self-supervised learning, and/or generative modeling
  • Proficient in managing unstructured datasets with strong analytic skills
  • Demonstrated project management and organizational skills
  • Proven ability to support and collaborate with cross-functional teams in a dynamic environment

Responsibilities

  • Develop and evaluate scalable deep learning algorithms that are central to our brain decoding initiatives
  • Collaborate closely with data scientists to pioneer research in generative modeling and representation learning
  • Identify bottlenecks in data processing pipelines and devise effective solutions, improving performance and reliability
  • Maintain high standards of code quality, organization, and automatization across all projects
  • Adapt machine learning and neural network algorithms to optimize performance in various computing environments, including distributed clusters and GPUs

Preferred Qualifications

  • Degree in Computer Science, Statistics, Informatics, Information Systems, or another quantitative field
  • Familiarity with deep learning libraries such as Huggingface, Transformers, Accelerator and Diffuser
  • Hands-on experience in training and fine-tuning generative models like diffusion models or large language models such as GPTs and LLAMAs
  • Experience with data and model visualization tools

Benefits

Remote work environment

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