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**Title: Principal Machine Learning Engineer** **About Sezzle**: Sezzle is a leading financial technology company dedicated to empowering consumers by offering flexible payment options and innovative shopping experiences. Our "buy now, pay later" platform enables millions of customers to make responsible purchases, manage payments, while driving growth for thousands of merchants. Additionally, Sezzle's shopping solutions provide consumers with seamless, personalized experiences across a diverse range of retailers. We are committed to fostering financial inclusion and delivering cutting-edge technology to shape the future of commerce. **About the Role**: We are seeking a highly-experienced engineer to join our core AI/ML team, responsible for overseeing the design, development, and deployment of machine learning models that power and enhance our financial platform. In this role, you will drive the creation of scalable machine learning solutions for personalized recommendations in the Sezzle marketplace, fraud detection, and credit risk assessment, utilizing a combination of cloud services, open-source tools, and proprietary algorithms. Your leadership will be key in blending machine learning development and operations (MLOps) to automate and optimize the full lifecycle of our ML models. You will collaborate with a team of engineers and data scientists to build large-scale, high-quality solutions that address diverse challenges in the shopping and fintech space. You'll ensure our AI-driven features are robust, efficient, and scalable as we continue to grow. **Responsibilities**: - **Design, Build, and Maintain Scalable ML Infrastructure**: Lead the design and development of scalable machine learning infrastructure on AWS, utilizing services like AWS Sagemaker for efficient model training and deployment. - **Collaborate with Product Teams**: Work closely with product teams to develop MVPs for AI-driven features, ensuring quick iterations and market testing to refine solutions effectively. - **Develop Monitoring & Alerting Frameworks**: Create and enhance monitoring and alerting systems for machine learning models to ensure high performance, reliability, and mínimal downtime. - **Support Cross-Departmental AI Utilization**: Enable various departments within the organization to leverage AI/ML models, including cutting-edge Generative AI solutions, for different use cases. - **Provide Production Support**: Offer expertise in debugging and resolving issues related to machine learning models in production, participating in on-call rotations for operational troubleshooting and incident resolution. - **Scale ML Architecture**: Design and scale machine learning architecture to support rapid user growth, leveraging deep knowledge of AWS and ML best practices to ensure robustness and efficiency. - **Mentor and Elevate Team Skills**: Conduct code reviews, mentor team members, and elevate overall team capabilities through knowledge sharing and collaboration. - **Stay Ahead of the Curve**: Stay updated with the latest advancements in machine learning technologies and AWS services, driving the adoption of cutting-edge solutions to maintain a competitive edge. **Minimum Requirements**: - Bachelor's degree in Computer Science, Computer Engineering, Machine Learning, Statistics, Physics, or a relevant technical field, or equivalent practical experience. - At least 6+ years of experience in machine learning engineering, with demonstrated success in deploying scalable ML models in a production environment. **Ideal Skills & Experience**: - Deep expertise in one or more of the following areas: machine learning, recommendation systems, pattern recognition, data mining, artificial intelligence, or related technical fields. - Proven track record of developing machine learning models from inception to business impact, demonstrating the ability to solve complex challenges with innovative solutions. - Proficiency with Python is required, and experience with Golang is a plus. - Demonstrated technical leadership in guiding teams, owning end-to-end projects, and setting the technical direction to achieve project goals efficiently. - Experience working with relational databases, data warehouses, and using SQL to explore them. - Strong familiarity with AWS cloud services, especially in deploying and managing machine learning solutions and scaling them in a cost-effective manner. - Knowledgeable in Kubernetes, Docker, and CI/CD pipelines for efficient deployment and management of ML models. - Comfortable with monitoring and observability tools tailored for machine learning models (e.g., Prometheus, Grafana, AWS CloudWatch) and experienced in developing recommender systems or enhancing user experiences through personalized recommendations. - Solid foundation in data processing and pipeline frameworks (e.g., Apache Spark, Kafka) for handling real-time data streams. **About You**: - You have relentlessly high standards - many people