Senior Support Engineer

LanceDB

  • San Francisco, California
  • 30+ days ago
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    Skills

    • Amazon Web Services (AWS)unmatched
    • Apache HBaseunmatched
    • Artificial Intelligence (AI)unmatched
    • Autoscalingunmatched
    • Best Practicesunmatched
    • Big Dataunmatched
    • Bridge Buildingunmatched
    • Building Systemsunmatched
    • Civil Engineeringunmatched
    • Cloud Computingunmatched
    • Communication Skillsunmatched
    • Customer Escalationsunmatched
    • Customer Relationsunmatched
    • Customer Satisfactionunmatched
    • Customer Support/Serviceunmatched
    • Data Partitioningunmatched
    • Data Setsunmatched
    • Database Technologyunmatched
    • Debugging Skillsunmatched
    • Debugging Toolsunmatched
    • Distributed Computingunmatched
    • Distributed Databasesunmatched
    • Establish Prioritiesunmatched
    • Failoverunmatched
    • GCP (Good Clinical Practices)unmatched
    • HDFS (Hadoop Distributed File System)unmatched
    • Identify Issuesunmatched
    • Incident Responseunmatched
    • Instrumentationunmatched
    • Knowledge Baseunmatched
    • Large-Scale Systemsunmatched
    • Machine Toolunmatched
    • Metricsunmatched
    • Microsoft Windows Azureunmatched
    • Open Sourceunmatched
    • Operational Supportunmatched
    • Performance Tuning/Optimizationunmatched
    • Process Improvementunmatched
    • Production Systemsunmatched
    • Python Programming/Scripting Languageunmatched
    • Replication and Remote Mirroringunmatched
    • Reporting Dashboardsunmatched
    • Scalable System Developmentunmatched
    • Service Level Agreement (SLA)unmatched
    • Software Patchesunmatched
    • Startupunmatched
    • Support Documentationunmatched
    • Systems Administration/Managementunmatched
    • Team Playerunmatched
    • Technical Supportunmatched
    • Unix Shell Programmingunmatched
    • User Interface/Experience (UI/UX)unmatched

    Description

    About LanceDBLanceDB is a high-performance, open-source, cloud-native database built for multimodal workflows. From vector search at multi-billion scale to real-time retrieval, feature engineering, and analytics across large-scale datasets, LanceDB powers AI data infrastructure.We’re looking for a hands-on, technically strong Support Engineer who will be the bridge between our engineering team and enterprise users of LanceDB, helping our customers debug distributed databases built in Rust.

    Your Role

    • As one of the early team members, build our support infrastructure and practices while handling customer cases:

      • Develop and maintain knowledge-base articles, runbooks, and support tooling that document common issues, best practices, deployment patterns, and performance tuning.

      • Contribute to metrics around support response-times, resolution times, customer satisfaction, and help build a scalable support organization as we grow.

      • Work proactively: identify recurring issues, escalate product bugs or UX gaps, propose improvements in the support process, and advocate for the customer in the roadmap.

    • Serve as one of the primary technical points of contact for our customers: troubleshoot issues, respond to escalations, and guide customers through full lifecycle support for large-scale deployments of LanceDB.

    • Work in close collaboration with our engineering and product teams to reproduce issues, debug root causes, propose remediation, and drive fixes or enhancements.

    • Dive deeply into distributed database internals: query execution, storage engine, indexing, sharding, replication, fail-over, and cloud orchestration (Kubernetes, serverless-style deployments).

    • Use and contribute to Rust codebases: reproduce customer environments, inspect logs, build diagnostic tools, run instrumentation, apply patches and configuration changes.

    What We’re Looking ForMust-have (please do not apply unless you meet all of the criteria in this section)

    • 8+ years of professional experience in a support / operations / troubleshooting role in a distributed database or data infrastructure environment.

    • Demonstrated experience with distributed database systems, cloud-native data platforms (AWS, GCP, or Azure), and Kubernetes or serverless deployment models.

      • Strong knowledge of distributed systems concepts: sharding, replication, consensus, failure modes, resource contention, performance bottlenecks, and cloud-native orchestration (Kubernetes, containerization, autoscaling).

    • Demonstrated experience with at least one of the following: vector/feature stores, analytics engines or big data systems.

    • Very comfortable with reading logs and correlating them with source code, working with Grafana dashboards, and creating shell scripts or Python code to assist in debugging.

    • Excellent customer-facing communication skills: you’ll be working directly with high-value customers, so you must be comfortable explaining complex technical issues clearly, managing expectations, and advocating for the customer.

    • Strong sense of ownership, urgency, correct prioritization under pressure, and ability to work closely with engineering teams to drive resolution.

    • Comfortable working in a fast-moving startup environment with high autonomy and evolving responsibilities.

    Nice-to-have

    • Proficiency in Rust: you should be comfortable reading, navigating, and debugging code; ideally you’ve built or debugged production-quality systems written in Rust.

    • Familiarity with storage engine internals, indexing/data layout, performance tuning, and profiling tools.

    • Contributions to open-source projects (especially Rust), or experience writing diagnostic tools, debuggers, or instrumentation.

    • Experience deploying and monitoring systems in large-scale production environments: logging/observability (e.g., Prometheus, Grafana, OpenTelemetry), alerting, SLOs/SLAs.

    • Previous experience creating new runbooks, selecting and configuring support ticketing systems, and defining incident response processes.

    Why Join Us

    You’ll join a world-class team of open-source builders (co-authors of pandas, and contributors to HDFS, Arrow, Iceberg, and HBase) working on cutting-edge AI infrastructure. You’ll work together on building systems that support next-generation AI workloads, while helping define how LanceDB runs and scales in production infrastructure at some of the most innovative companies of our time.

    Numbers & Facts

    LocationSan Francisco, California

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