Senior Software Engineer, Data Product

🕒 il y a 1 mois

🗣️🇺🇸🇬🇧 Anglais requis

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Shippo

201 - 500 employés

Fondée en 2013

📦 Logistique

📣 Marketing

💼 Conseil

💰 €50 000 000 Series E - Shippo en 2021-06

Logistics • Marketing • Consulting

Shippo est une API et une plateforme SaaS de logistique et d'expédition pour les entreprises de commerce électronique. Elle fournit des outils pour comparer les tarifs des transporteurs, créer et acheter des étiquettes d'expédition, suivre les colis et gérer les retours via un domaine court personnalisé et des intégrations conviviales pour les développeurs. Shippo cible les détaillants en ligne et les places de marché cherchant à rationaliser les opérations d'expédition et à réduire les coûts de traitement.

Description

• Own the backend services that deliver EDD predictions to merchants and internal consumers — APIs, caching, contracts, and reliability under production load. • Build Python services suited to high-throughput, low-latency workload. • Lead API design, service decomposition, and cross-team technical reviews for data product surfaces spanning rules automation, ML-based recommendations, analytics, and configuration systems. • Own reliability and observability across the services you build—instrumentation, alerting, runbooks, and incident response. • Partner with data science to bring model outputs into production—owning the API layer, serving infrastructure, and operational reliability of ML-powered features. • Build and maintain feature pipelines that bridge offline training and online inference, with an emphasis on consistency and data quality. • Establish MLOps foundations for the team: model deployment patterns, versioning, rollback procedures, A/B test infrastructure, and experiment tracking integrations. • Instrument ML systems for observability—latency, throughput, drift signals, and prediction quality—so issues surface before they reach merchants. • Evaluate frameworks, tooling, and architectural patterns for ML serving and make pragmatic recommendations grounded in production experience. • Set the technical direction for backend and ML systems on the Data Products team—proposing and driving architectural decisions that balance velocity with long-term maintainability. • Lead design reviews, raise the bar in code reviews, and establish engineering practices the team can follow. • Mentor other engineers on Software or ML engineering. • Apply AI tooling to your own workflow and share learnings with the team.

🎯 Exigences

• 8+ years building production backend systems, with a meaningful chunk of that time on ML-powered features. • Deep Python backend skills with FastAPI (or an equivalent async framework), strong PostgreSQL fundamentals (schema design, query optimization, migrations), and hands-on experience with event-driven systems like Kafka. • Track record of owning distributed systems through their full lifecycle: design, launch, monitoring, and iteration. • Production experience deploying and operating ML models as APIs—not just training them. • Hands-on experience with ML lifecycle tooling (MLflow or equivalent) and the discipline of treating models as production artifacts with proper tracking, registry, and promotion. • Comfortable reasoning about model versioning, shadow modes, canary deployments, A/B tests, and rollback strategies — including when each is the right tool for the job. • You can instrument an ML system for the signals that matter (latency, throughput, drift, prediction quality) and explain to a non-ML audience what's actually wrong when one of them moves. • You write high-quality, maintainable code, own problems end-to-end from design through long-tail production behavior, and hold that standard in design and code reviews. • You communicate trade-offs clearly — including unpopular ones like "we shouldn't ship this yet" or "the bottleneck isn't the model." • You partner well with Data Science. You don't see ML as DS's job and operations as yours; you see the whole system as the team's job.

🏖️ Avantages

• Flexible work arrangements • Professional development opportunities

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