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Data Operations Analyst @ GEEIQ

London, LondonOnsiteFull-time
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About this role

About Us We are a fast-growing Series A SaaS startup at the forefront of the next big shift in marketing, transforming the way brands connect with audiences in virtual worlds. This is a shift on par with the rise of social media, and we are building the analytics engine to power it. You will be joining a tight-knit, high-impact team of 40 people, including a product team of 3 and an engineering team of 10, meaning your work will directly shape the trajectory of our platform and company. About the Role Our platform runs on data, and this role owns the work that keeps it flowing: pulling, validating, importing and quality-checking so the wider team can move quickly and with confidence. Sitting within the product team, you will own the operational data layer: the day-to-day work of getting accurate, trustworthy data into the hands of product, client services and the wider business, fast. This is a hands-on product & operations role, not an engineering or a pure-analysis one. You are the dependable go-to who unblocks the team's data needs and keeps everything flowing and accurate. You write SQL confidently, lean heavily on AI tools to move quickly, and you are comfortable reading code and data models, but you take your pride from being the person who keeps data reliable and accessible, not from building pipelines or chasing the next engineering project. Own data access across the product lifecycle: Be the team's first port of call for data requests, pull, shape and deliver data in the format product, CS and sales need. Validate and quality-check: Sanity-check, validate and QC data across the platform so the team can trust every number. Spot anomalies, chase them down, and keep our data honest. Manage imports and ingestion ops: Run routine data imports and ingestion tasks, making sure data lands cleanly, completely and on time. Work AI-first: Use AI tools (Claude, Cursor, Copilot and similar) to rapidly translate business logic or SQL into complex database queries (including NoSQL / Elastic / Mongo), accelerating repetitive work, and continually improve how the team gets and checks data. Document and share knowledge: Document data sources, queries and processes so knowledge never sits with just one person. You make the team less dependent on any single individual, including yourself. Own the long tail: Take ownership of the steady stream of ad hoc requests that keeps the wider team moving. Partner cross-functionally: Work closely with data engineers and product team, translating between technical data and real business needs.

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