Machine Learning Engineer, Underwriting
Design and deploy ML pipelines for underwriting decisions
Design, develop, and deploy end-to-end machine learning pipelines for underwriting decisions, 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 while working with structured and unstructured data using Pandas, NumPy...
Why This Role?
Work on high-impact ML systems powering critical underwriting decisions at a profitable Y Combinator-backed fintech
Key Responsibilities
- Design and develop end-to-end machine learning pipelines for underwriting
- Implement MLOps practices including CI/CD, model versioning, and monitoring
- Optimize ML models through feature engineering and hyperparameter tuning
- Work with structured and unstructured data using Pandas, NumPy, and SQL
- Deploy and manage models on cloud platforms using Docker and Kubernetes
- Maintain model performance with continuous monitoring and bias detection
Requirements
- Proficiency in Python and ML libraries like Scikit-learn, LightGBM, and PyTorch
- Strong understanding of supervised and unsupervised learning algorithms
- Experience with MLOps tools such as MLflow, Kubeflow, or SageMaker
- Hands-on experience with Pandas, NumPy, and SQL for data manipulation
- Familiarity with cloud platforms (AWS, GCP, Azure) and containerization tools
Required Skills
Indonesia Context
- Working Hours Overlap:
- Flexible — work your own hours
Keywords
View Original Description from Ashby Job Boards
Original description from Ashby Job Boards
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’re at 8-figures of annualized revenue, growing quickly, and profitable. 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. BENEFITS: 💰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
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Frequently asked questions
- Is Machine Learning Engineer, Underwriting at Bree a remote job?
- Yes. Machine Learning Engineer, Underwriting at Bree is a fully remote role open to candidates worldwide.
- What is the salary for Machine Learning Engineer, Underwriting at Bree?
- The listed pay range for this role is CA$180k–250k/yr.
- What type of employment is Machine Learning Engineer, Underwriting at Bree?
- This is a full time position.
- How do I apply?
- Click the "Apply" button on this page to go to the official application at Bree.
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