Data Analyst

Data Analyst

Full-Time 65000 - 80000 £ / year (est.) No working from home possible
Winton Capital US LLC

At a Glance

  • Tasks: Ensure high-quality financial datasets for analysis and automated trading.
  • Company: Winton, a leader in quantitative analysis and technology in finance.
  • Benefits: Competitive salary, collaborative environment, and opportunities for professional growth.
  • Other info: Fast-paced, data-driven culture with excellent career advancement potential.
  • Why this job: Join a dynamic team and make an impact in the financial markets with data.
  • Qualifications: 3+ years of experience with financial data and strong analytical skills.

The predicted salary is between 65000 - 80000 £ per year.

Winton leverages quantitative analysis and cutting-edge technology to identify and capitalize on opportunities across global financial markets.

We foster a collaborative and intellectually stimulating environment, bringing together individuals with Mathematics, Physics and Computer Science backgrounds who are passionate about applying rigorous scientific methods to financial challenges.

As a fundamentally data-driven business, our success is heavily linked to the acquisition, processing, and analysis of vast datasets.

High-quality, well-managed data forms the critical foundation for our quantitative research, strategy development, and automated trading systems.

As a Data Analyst within our Quantitative Platform team, you will own the quality, consistency, and discoverability of datasets as they move from onboarding into production.

You will uphold our data standards and catalogue, so datasets are easy to find, trust, and use.

Your work spans vendor-sourced financial data, time series across instruments and asset classes, and complex, multi-table products where correct mapping and definitions matter as much as raw data accuracy.

  • Your Responsibilities Will Include
  • Defining and executing rigorous acceptance criteria for new and evolving data products.

From sample evaluation through to production, including coverage analysis, staleness and gap detection, and reconciliation against trusted references where available.

  • Acting as a subject-matter expert on our data products, helping Strategy Managers with vendor formats, data anomalies, corporate actions semantics, identifiers, and documentation gaps; elevate and track issues with vendors and internal stakeholders until resolved.
  • Building and maintaining an automated catalogue of datasets (descriptions, owners, refresh cadence, SLAs, source systems, schemas, known limitations).

Keeping the catalogue aligned with reality when pipelines change so consumers rely on current metadata.

  • Systematically probe new and existing datasets to ensure they meet our high data quality standards.

Stress-test point-in-time, versioning and revision semantics; chase down corrections, duplicates, staleness, and discontinuities with source vendors.

  • Contributing to data quality frameworks, onboarding checklists, and documentation (data dictionaries, lineage notes, known limitations) so quality expectations are repeatable and auditable.
  • Partnering with Data Engineers on handoff contracts (schemas, SLA expectations, alerting thresholds), with Quant Researchers on analytic sanity checks, and with operations on repeatable triage when anomalies appear in production datasets.
  • What We Are Looking For
  • 3+ years' experience working with financial data vendors and their products.
  • Strong grasp of cross-asset class time series data and what common or nuanced issues can arise when onboarding new datasets.
  • Comfort with complex, multi-entity datasets (join keys, slow-changing dimensions, snapshots vs history) and a methodical approach to debugging inconsistencies.
  • Hands‑on analytical experience using Python, and the ability to summarize findings clearly for both technical and non‑technical audiences.
  • Meticulous attention to detail and a bias toward evidence-based conclusions.
  • Excellent communication and collaboration skills, and the ability to work in a team in a fast-moving, data-centric environment.
  • What Would Be Advantageous
  • Direct experience with reference and hierarchical data (security masters, classification trees, entity relationships) and cross-vendor alignment.
  • Familiarity with market, fundamental, or alternative datasets used in systematic or quantitative investment workflows.
  • Exposure to data quality tooling or statistical monitoring (distributions, drift, anomaly detection) applied to production or near-production feeds.
  • Experience building ETL/ELT pipelines using Python.
  • Practical experience using LLMs to accelerate complex data investigations.
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Data Analyst employer: Winton Capital US LLC

Winton is an exceptional employer that champions a collaborative and intellectually stimulating work culture, ideal for Data Analysts eager to make a significant impact in the financial markets. With a strong focus on employee growth, we provide opportunities to engage with cutting-edge technology and vast datasets, ensuring that our team members are equipped to excel in their roles. Located in a dynamic environment, Winton offers a unique blend of rigorous scientific methods and innovative practices, making it a rewarding place for those passionate about data-driven decision-making.

Winton Capital US LLC

Contact Details:

Winton Capital US LLC Recruitment Team

StudySmarter Expert Advice🤫

We think this is how you could land Data Analyst

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Apply Directly through Our Website

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We think you need these skills to ace Data Analyst

Data Quality Management
Financial Data Analysis
Time Series Analysis
Python
Data Cataloguing
Data Standards Compliance
Debugging Skills

Some tips for your application 🫡

Show Off Your Projects:In the world of data science, your projects can speak volumes about your skills. Make sure to showcase a few key projects in your CV or portfolio, especially those that highlight your ability to work with data sets, build models, or use relevant tools like Python, R, or SQL. Don’t forget to include links to any GitHub repositories if applicable!

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Craft a Tailored Cover Letter:For a full-time role at Winton Capital US LLC, your cover letter should reflect your passion for data science and your excitement about the specific projects or values of the company. Dive into why you’re a good fit, how your skills align with their needs, and any unique perspectives you can bring to the team.

Stand Out with Relevant Courses and Certifications:Although experience talks, relevant courses or certifications can be your ticket to impressing hiring managers at Winton Capital US LLC. Mention any standout courses you've completed that equipped you with essential skills, such as machine learning certifications or data visualisation courses. This shows your commitment to continuously developing your skills in the field!

How to prepare for a job interview at Winton Capital US LLC

Brush Up on Your Statistics

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Get Comfortable with Python and R

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Prepare for Case Studies

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