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Senior Software Engineer, Data Management

Amplitude
CompanyAmplitude
CategoryEngineering
LocationSan Francisco
RemoteOn-site (inferred)
EmploymentNot stated
LevelSenior
SalaryNot stated by the employer
Posted2 Mar 2026
Last verified30 Jul 2026
SourceEmployer career page (ashby)
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Description
About The Role & Team The Data Management team is building the Trust Engine that powers the entire product. We are moving beyond simple data entry to architecting a self-healing, intelligent data ecosystem. As a member of the team, you will contribute to the technical vision for how customers define, govern, and trust their data at massive scale. You will help design and build systems that govern the data lifecycle, including complex ingestion planning, semantic enrichment, and data observability — spanning backend infrastructure, APIs, and the product surfaces customers interact with directly. You will be at the forefront of transforming data governance from a manual chore into an automated, AI-driven infrastructure that powers our 'Ask AI' and Data Assistant capabilities. You are helping solve the hardest problem in analytics: proving that the data is right. The team is fast moving and you will be expected to iterate quickly and own, drive and achieve alignment on a variety of projects ranging from new product features to best practices and scalability of our codebase & infrastructure. As a Senior Engineer, you will: - Ship meaningful product end‑to‑end. Take ownership of well-scoped features and system improvements that measurably improve data quality, reliability, and the customer experience — from design through delivery. - Contribute to technical direction. Participate actively in design discussions, propose solutions to complex problems, and help define patterns and practices that raise the quality bar for the team. - Uphold operational excellence. Instrument the services you build, contribute to SLO definitions, respond to incidents, and improve the reliability of systems you own. - Build for scale and correctness. Contribute to ingestion and governance workflows with an eye toward throughput, latency, and correctness — applying appropriate caching, testing, and resilience patterns. - Build the foundations for trusted data. Work on capabilities such as a shared data health evaluation framework and APIs, event/property observability (anomalies, schema drift), safe clean‑up workflows, and metadata ingestion — often in collaboration with AI foundations, Pipeline/Query, and Go-to-market teams. - Expand beyond events. Help architect support for non-event data models — including entities, metrics, and dimensional data — so customers can govern their full data ecosystem within a unified taxonomy experience. - Pioneer session replay–driven taxonomy. Contribute to using session replay signals to automatically surface untracked interactions, propose new events and properties, and close instrumentation gaps — turning passive recordings into an active, intelligent taxonomy builder. - Own fullstack delivery. Design and ship features spanning backend services, data pipelines, and the React/TypeScript product surfaces customers use daily. - Partner across functions. Collaborate with Product, Design, and other engineering teams (e.g., Analytics, Experiment, Ingestion/Query, Session Replay) and engage with customers and account teams to ground decisions in real needs. - Grow and help others grow. Participate in design and code reviews, share knowledge, and invest in your own development and that of teammates. You'll be a great addition to the team if you: - 5+ years of previous relevant experience. - Bachelors degree in Computer Science or relevant field.  - Strong fullstack engineering background. Experience owning and delivering features that span backend services and user-facing product, including APIs and interactive UI in distributed, microservices architectures. - Fullstack proficiency. Solid skills in JavaScript/TypeScript (Node.js and React/frontend frameworks) and/or Python, plus experience with AWS and infrastructure tooling. - Operational mindset. Experience with observability (metrics/logs/traces), automated testing, and CI/CD — and a habit of treating reliability
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