## **About Bree** Bree is a consumer finance platform building faster, simpler, and more affordable financial services for Canadians who often live paycheck to paycheck. We operate in a massive market that’s historically been underserved by traditional financial institutions, and we’re building products that help customers access short-term credit with a transparent, user-first experience.\ To date, 800,000+ Canadians have signed up for Bree—and we believe we’re still early. We’re at an exciting intersection of product-market fit, rapid growth, and a clear path to becoming one of the most important fintech companies in Canada.\ We were part of Y Combinator (Summer 2021) and raised a $2M seed round shortly after. ## **About the Role** We’re looking for a Machine Learning Engineer to build and scale high-impact, world-class ML systems. You’re passionate about deploying AI solutions, optimizing performance, and driving measurable results. Your work will power critical decisions and shape the future of our technology. ## **What You'll Do** * Design, develop, and deploy end-to-end machine learning pipelines, ensuring efficiency in training, validation, and inference. * Implement MLOps best practices, including CI/CD for ML models, model versioning, monitoring, and retraining strategies. * Optimize ML models using feature engineering, hyperparameter tuning, and scalable inference techniques. * Work with structured and unstructured data, leveraging Pandas, NumPy, and SQL for efficient data manipulation. * Apply machine learning design patterns to build modular, reusable, and production-ready models. * Collaborate with data engineers to develop high-performance data pipelines for training and inference. * Deploy and manage models on cloud platforms (AWS, GCP, Azure) with containerization and orchestration tools like Docker and Kubernetes. * Maintain model performance by implementing continuous monitoring, bias detection, and explainability techniques. ## **What You'll Need** * Proficiency in Python and familiarity with ML libraries like Scikit-learn, LightGBM, and PyTorch. * Strong understanding of machine learning algorithms, including supervised and unsupervised learning techniques. * Experience with MLOps tools such as MLflow, Kubeflow, or SageMaker for tracking experiments and automating workflows. * Hands-on experience with data manipulation libraries (Pandas, NumPy) and databases (SQL, NoSQL). * Knowledge of cloud-based ML deployment and infrastructure management. * Ability to implement real-time and batch inference pipelines efficiently. * Strong analytical and problem-solving skills to translate business needs into scalable ML solutions. * Eagerness to work in a fast-paced environment and continuously refine ML processes for efficiency and accuracy. ## **Full-Time Employee Benefits Include:** 💰Top of the market compensation for top performers ⚕️Comprehensive health, dental, and vision benefits plan 🖥 $1,500 annual learning & home-office stipend 🧘🏼 $1,000 annual wellness stipend 🍔 Monthly Lunch Stipend 🚗 Commuter Benefits 🚼Paid Parental leave 🏝20 annual PTO days + unlimited sick days 🚀 Quarterly Team Gatherings ☕ In Office Amenities
Bree
Machine Learning Engineer
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