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Full Stack Data Analyst

Fabulous
CompanyFabulous
CategoryEngineering
LocationFrance
RemoteRemote
EmploymentNot stated
LevelNot stated
SalaryNot stated by the employer
Posted24 Jun 2026
Last verified30 Jul 2026
SourceEmployer career page (workable)
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Description
You'll be part of a small, cross-functional data team that drives impact across Fabulous. We work closely with Product Growth, User Acquisition, and Finance. We take a full stack approach : every team member contributes across the full data spectrum. We don't specialize into Analytics Engineering or Data Science or Data Analysis. While we each have our own strengths, we contribute to projects across the entire spectrum of data work. This encourages strong ownership and drives impact. Practically, we work across three areas: - Analytics Engineering : Data modeling and transformations to build, maintain, and scale our analytics pipelines in dbt . Once an MVP is validated, we implement and improve it iteratively - with solid testing, data observability, and architecture that keeps tech debt manageable. - Applied Analytics : Data exploration, dashboard building in Omni, and ML model building. We aim for simplicity and interpretability but don't shy away from complexity when we face it. We work with highly data literate stakeholders - when building new models or dashboards we empower our users to continue to analyze the data themselves. - Data Science: ML model building to make predictions to inform the business quickly. Our stack: **Fivetran · BigQuery · dbt · Amplitude · Omni** This role is critical to the team's continued success: - Diverse, high-impact projects. You'll work on business-critical problems in close collaboration with business teams — improving metric accuracy, exploring new growth perspectives, building well-tested reporting pipelines, investigating data discrepancies, or applying statistics and ML where they add real value. - Building and maintaining our codebase. You'll contribute to solid analytics pipelines using SQL and dbt. Managing tech debt, improving engineering practices, and shaping the project's architecture are core to this role. - Growing into ownership. Over time, you'll own parts of the codebase, become the go-to person for at least one business team, and have a strong voice in how the analytics project evolves. - Leveling up the team. Share knowledge, and contribute to practices that help everyone grow. Speak up - we want you to shape the team's direction, cohesion, and mission. - Working autonomously. You'll manage your own projects and stakeholders. Clear, concise documentation is expected so future collaborators can build on your work. We embrace the age of AI. We use tools like Claude Code daily to write, review and ship code faster, while focusing our time on problem solving multiple projects in parallel. We are building out multiple entry points for our business stakeholders to interact with our data in natural language and believe this is the future of data work. You'll report to the Data Lead and be part of the Engineering team. Requirements Required: - University degree in Engineering, Computer Science, or Applied Mathematics - 4+ years of experience across data science, analytics, or analytics engineering - ideally with exposure to more than one of these - Excellent SQL skills, with experience building data models using dbt (or similar tools) - Strong engineering fundamentals: testing, clean code, peer review, CI/CD, git workflows - Passionate about the future of AI, researches the cutting edge, not afraid to experiment with new tools - Experience with cloud data warehouses and modern data stack tools - Self-starter who takes ownership, manages stakeholders, and communicates proactively - Excellent written and verbal English - Comfortable working remotely (we're remote-first) Great to have: - Hands-on experience with Digital Marketing / User Acquisition (attribution, iOS privacy & SKAN, UA metrics) or Product / Growth (A/B testing, retention, monetization) - Familiarity with our stack (Amplitude, dbt, BigQuery, Omni) - Good analytical and statistical intuition - Prior experience in an agile startup environment If you're excited
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