Sr Backend Engineer
Listed on 2026-09-01
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Software Development
Backend Developer
Join Quizlet
At Quizlet, our mission is to help every learner achieve their outcomes in the most effective and delightful way. We're a $1B+ learning platform used by two-thirds of U.S. high school students and half of college students, powering over 1 billion learning interactions each week.
We blend cognitive science with machine learning to personalize and enhance the learning experience for students, professionals, and lifelong learners alike. We're energized by the potential to power more learners through multiple approaches and various tools.
Let's Build the Future of Learning
Join us to design and deliver AI-powered learning tools that scale across the world and unlock human potential.
Why Join Quizlet?Massive reach: 60M+ users, 1B+ interactions per week Cutting-edge tech:
Generative AI, adaptive learning, cognitive science Strong momentum:
Top-tier investors, sustainable business, real traction Mission-first:
Work that makes a difference in people's lives Inclusive culture:
Committed to equity, diversity, and belonging
The Search team (part of Coach & Orchestration) owns the full path from raw content to search results — the pipelines and infrastructure that get content indexed, the services that query it, and the systems that serve it with high relevance and low latency. We're looking for a Backend Engineer who can own this end-to-end: from data ingestion and Elasticsearch index design through the retrieval/query services that power search in production.
You'll bring strong backend and data engineering fundamentals — pipeline design, orchestration, data modeling, and service/API development — with enough exposure to embeddings, vector search, and ML-adjacent concepts to support our hybrid (lexical + vector) retrieval today and our move toward ranking and relevance improvements tomorrow. You'll work at the intersection of data infrastructure, backend services, and search, ensuring our indices are fresh and our retrieval services are performant, reliable, and built to support increasingly sophisticated search.
About the Role:To support collaboration, we ask employees to be in the office at least two days a week:
Wednesday and Thursday.
- Design, build, and maintain data pipelines that ingest, transform, and load content into Elasticsearch indices at scale.
- Own index design — mappings, analyzers, sharding strategy, and lifecycle management — balancing indexing throughput, query latency, and storage cost.
- Build and operate the infrastructure for hybrid retrieval, combining lexical (BM25) search with dense vector similarity (kNN/HNSW) in Elasticsearch.
- Design and maintain the backend retrieval/query services that sit in front of Elasticsearch — API design, request routing, caching, and query fan-out.
- Integrate embedding generation into pipelines — batching, caching, and re-embedding workflows when models or content change — using off-the-shelf or hosted embedding models.
- Partner with product and applied ML teams to support the evolution from retrieval into multi-stage ranking, including feeding features to future learning-to-rank systems.
- Monitor and troubleshoot cluster health, service latency, indexing throughput, and query performance; drive improvements in reliability and observability.
- Implement zero-downtime reindexing and index cutover strategies (aliasing, blue/green indices) to support continuous schema and data evolution.
- Establish data quality and validation practices to catch pipeline failures and indexing issues before they reach production.
- Collaborate with infrastructure/platform teams on cluster sizing, service scaling, and cost optimization.
- Support experiment rollout for retrieval and ranking changes, working with feature flagging or A/B test infrastructure.
- Stay current on Elasticsearch/Open Search and retrieval-infrastructure best practices, evaluating what's worth adopting.
- Minimum 4+ years of experience in backend or data engineering, with hands-on ownership of production data pipelines and/or backend services.
- Strong SQL and experience with data warehouses (Snowflake, Big Query, Redshift, or similar).
- Proficiency in Python…
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