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Senior Analytics Engineer

Wgsn
CompanyWgsn
CategoryEngineering
LocationLondon
RemoteOn-site (inferred)
EmploymentFull-time
LevelSenior
SalaryNot stated by the employer
Posted2 Jul 2026
Last verified30 Jul 2026
SourceEmployer career page (lever)
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Description
The role We are looking to hire a Senior Analytics Engineer to join our Data Science team in London. This is a hybrid role based out of our London office. A minimum of 3 days per week in office is required. Working at WGSN Together, we create tomorrow  A career with WGSN is fast-paced, exciting and full of opportunities to grow and develop. We're a team of consumer and design trend forecasters, content creators, designers, data analysts, advisory consultants and much more, united by a common goal: to create tomorrow.  WGSN's trusted consumer and design forecasts power outstanding product design, enabling our customers to create a better future. Our services cover consumer insights, beauty, consumer tech, fashion, interiors, lifestyle, food and drink forecasting, data analytics and expert advisory. If you are an expert in your field, we want to hear from you.   Role overview  At WGSN, we believe that data is only as valuable as the decisions it empowers. As a Senior Analytics Engineer, you will sit at the vital intersection of Data Analysis and Data Engineering. Your mission is to bridge the gap between raw data and commercial value by building the internal tools, prototypes, and scalable data models that fuel our business intelligence. Unlike traditional data engineering roles focused on heavy production infrastructure, you will focus on agility—leveraging modern tech stacks and AI acceleration to spin up prototypes and methodologies quickly then scale dashboards and tools over time. As a Senior member of the team, you will be the champion of data best practices. You will initially focus on technical leadership as an individual contributor and mentoring other analysts to elevate their data modeling and software engineering skills. Over time, this role is expected to transition into direct line management responsibilities as the team expands. The team The WGSN Data team is a vibrant, multicultural mix of brilliant minds, blending global perspectives with deep expertise in retail and consumer analytics across a diverse range of industries such as fashion, beauty, interiors, and FMCG. Driven by a spirit of collaboration, we leverage our varied skill sets to transform complex datasets into high-impact insights, enabling our stakeholders to make confident, actionable, and results-driven business decisions. Key accountabilities Scalable Data Modeling: Design, build, and maintain robust, modular data models within Snowflake using dbt core, ensuring they are optimized for performance and aligned with business needs. Prototyping & Internal Tools: Rapidly build interactive GUIs, internal data applications and dashboards, and prototypes using Streamlit or similar to get actionable tools into the hands of stakeholders. Software Engineering Best Practices: Enforce modern software development standards across the analytics team, including rigorous version control (GitHub), CI/CD pipelines, and data testing paradigms. Data Integrity: Take ultimate ownership of data quality, cleaning, and transformation processes to ensure the wider business operates on a single source of truth. Team Mentorship: Actively coach and mentor data analysts, guiding them in writing production-grade SQL, adopting Python, and embracing dbt best practices. Culture of Learning: Foster an environment of continuous learning, specifically helping the team explore more advanced technologies. Translate Business to Tech: Partner with non-technical business leaders and technical engineering teams alike to translate complex commercial needs into working data solutions. Advocacy & Sharing: Proactively showcase new data products, share analytical insights with the wider business, and vocally champion data-driven decision-making in cross-functional meetings. Agile Execution: Manage your work and dependencies independently using JIRA within a sprint framework, remaining highly adaptable to changes in scope or project requirements. This list is not exhaustive and there ma
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