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Senior Customer Success Engineer
LanceDBSenior Customer Success Engineer at LanceDB ensuring client success through technical expertise and strong communication. Collaborating cross-functionally to deliver optimal solutions for enterprise users.
Tech Stack
Tools & technologiesAWSAzureCloudDistributed SystemsGoogle Cloud PlatformKubernetesPythonRust
About the role
Key responsibilities & impact- Partner closely with customers to design, deploy, and optimize LanceDB in production environments, ensuring reliability, scalability, and performance for distributed, cloud-native workloads.
- Lead technical onboarding and architecture reviews; provide best-practice guidance on system configuration, query optimization, and integration patterns.
- Proactively identify adoption barriers, troubleshoot complex distributed-system issues, and coordinate with product and engineering teams to drive timely resolutions.
- Own customer success metrics: deployment time, usage growth, retention, and satisfaction. Build dashboards and track health across accounts.
- Develop and deliver technical enablement: create sample code, automation tools, and documentation to accelerate customer outcomes.
- Serve as the customer’s technical advocate internally — communicating feature requests, influencing roadmap priorities, and improving developer experience.
- Collaborate cross-functionally with sales engineering (for technical evaluations, proofs-of-concept, and demos) and support engineering (for escalations and issue triage).
- Contribute to internal tooling, runbooks, and playbooks that will form the foundation of LanceDB’s future customer success organization.
- Help to shape processes, tooling, and team culture as we scale customer success and post-sales engineering.
Requirements
What you’ll need- 10+ years of professional experience in technical roles such as post-sales engineering, customer success, solutions architecture, or technical support, ideally within the data infrastructure or distributed systems space.
- Proven track record supporting or deploying distributed database systems or large-scale cloud-native data platforms (e.g., high-availability, multi-region, and horizontally scalable environments).
- Strong proficiency in Rust and Python — able to read, debug, and write production-grade code in both languages.
- Deep understanding of distributed systems concepts: sharding, replication, consensus, partitioning, failure recovery, and performance tuning.
- Experience deploying and managing workloads on Kubernetes or other container orchestration frameworks, and familiarity with cloud environments (AWS, GCP, Azure).
- Exceptional communication and presentation skills: able to engage directly with customers’ engineering leaders, architects, and executives with credibility and empathy.
- Strong problem-solving ability, coupled with a customer-first mindset and the ability to operate autonomously in fast-moving, ambiguous environments.
- Willingness and ability to flex across functions — including pre-sales engineering, technical support, and post-sales enablement — as needed by the business.
Benefits
Comp & perks- Offers Equity 📊 Check your resume score for this job Improve your chances of getting an interview by checking your resume score before you apply. Check Resume Score
ATS Keywords
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Hard Skills & Tools
Distributed Systems ConceptsQuery OptimizationSystem ConfigurationPerformance TuningAutomation Tools Development
Soft Skills
Exceptional CommunicationProblem-Solving AbilityCustomer-First MindsetEmpathyAutonomous Operation