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Machine Learning Ops (mlops) Developer

Build foundation models and generative AI tools for the AEC industry.
Toronto
Mid-Level
1 month ago

✨ About The Role

- The role involves collaborating with other engineers to develop scalable data pipelines and architectures focused on MLOps best practices for large language models. - Responsibilities include supporting tasks related to data collection, analysis, content understanding, storage, and processing. - The developer will write code for model training, testing, and deployment, ensuring the accuracy and performance of machine learning models. - The position requires organizing and processing large batches of text and geometric data. - Communication of findings through quantitative data analysis and qualitative visuals is an important aspect of the job.

âš¡ Requirements

- A master's degree in Machine Learning, Artificial Intelligence, Mathematics, Statistics, Computer Science, or a related field is essential for this role. - Candidates should have at least 3 years of experience in machine learning engineering or a related field. - Proficiency in training deep neural networks, such as CNNs and transformers, is required, along with experience in at least one deep learning framework like PyTorch or TensorFlow. - Familiarity with large language models (LLMs) and related technologies, including embedding models and vector databases, is crucial. - A strong understanding of data modeling, architecture, and processing using varied data representations, including 2D/3D geometry, is necessary.
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Machine Learning Ops (mlops) Developer
Toronto
Operations
About PlanGrid
Mobile applications for the construction industry.