Description
Key Responsibilities:
- Lead the productionalization of personalization and classification algorithms.
- Build with data and analytics in mind, to ensure continued accuracy and relevance of personalization, classification, and ranking algorithms.
- Translate experimental outputs (from AWS Sagemaker/Personalize) into production-ready systems, ensuring efficiency and reproducibility.
- Demonstrate full stack experience with specialization in backend or infrastructure while contributing to broader projects.
- Collaborate on architecture and technical decisions that influence the direction of the platform, ensuring scalability, performance, and user-focused improvements.
- Design and maintain model-serving infrastructure, including APIs, batch pipelines, or streaming systems required to deploy ML models reliably.
- Build with data and analytics in mind, to ensure continued accuracy and relevance of personalization and classification algorithms.
- Focus on performance optimization and system reliability, especially as our user base grows.
- Drive experimentation with MVPs, balancing rapid iteration with long-term sustainable growth and developer experience.
- Provide mentorship to engineers, fostering a culture of growth and collaboration.
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