At a Glance
- Tasks: Write production code and build data pipelines that power our Insights products.
- Company: Join Codat, a cutting-edge advisory intelligence solution backed by industry giants.
- Benefits: Remote work, competitive salary, and opportunities for professional growth.
- Other info: Be part of a dynamic team with a focus on AI and innovative data solutions.
- Why this job: Make a real impact by turning raw data into actionable insights for clients.
- Qualifications: Strong Python skills and experience in building data pipelines from scratch.
The predicted salary is between 65000 - 80000 £ per year.
About Codat
Codat is an advisory intelligence solution purpose-built for modern commercial banking. Through rich, specialized data, forward-looking insights, and integrated workflows, Codat empowers banking teams to deepen their relationships, grow their revenue, and simplify their day-to-day work. Founded in 2017 and backed by JPMorgan, PayPal, Amex, Plaid, and Shopify, Codat has successfully powered over 350,000 connections to business customers’ financial systems — and is trusted by industry leaders to turn scattered information into actionable, strategic advantages in real time, every time.
The Role
We're looking for a Senior Data Engineer to join our Data and Insights team. You'll be hands-on every day, writing production code, building and maintaining data pipelines, and shipping features that turn raw data into intelligence our clients can act on. You'll work across the full project lifecycle, from understanding the problem through to delivery, and you'll care as much about code quality and operational reliability as you do about getting things shipped. This is also a technical leadership role. As a senior member of the team, you'll set and lead the technical direction of our Insights platform. This is a visible position within engineering and across the wider business, so you'll explain your thinking clearly, share the reasoning behind it, and bring people with you. You'll do all of this while staying close to the code: it'll suit you if you want to keep building hands-on, rather than move into pure architecture or people management in the near term.
What You'll Do
- Write production code every day, most likely in Python, building and maintaining the data pipelines that power our Insights products.
- Own the full lifecycle of your projects, from understanding the data domain through to pragmatic design, shipping, and keeping things running reliably in production.
- Set and lead the technical direction of the Insights platform, and communicate it openly across engineering and the wider business, so product and commercial colleagues understand the choices you are making and why.
- Help raise engineering standards across the team and improve technical quality through strong engineering practice, including testing, observability, data quality checks, and clean, maintainable code.
- Make AI your default way of working, and find opportunities to apply it across our products and pipelines where it delivers real value, from research and prototyping through to more operational uses such as agents that help diagnose and fix pipeline issues.
- Help lay the foundations for our emerging MCP and semantic layer, so our data becomes something both people and AI systems can query and reason over.
What You'll Bring
- Strong software engineering fundamentals: you write well-tested, production-ready Python and care about maintainability, observability, and operational excellence.
- A track record of building data pipelines and production systems from the ground up, rather than mainly configuring managed services or wiring off-the-shelf tools together. You can describe complex logic you've written and the engineering problems you had to solve.
- Solid experience with modern data engineering tools and patterns, with real depth in several of SQL, Spark, Databricks/Delta Lake, orchestration tools (Dagster, Airflow, Temporal), and dbt.
- Comfort with modern deployment practices: CI/CD, containerisation (Docker), and cloud-based infrastructure. It's a bonus if you've shaped these for a team, not only worked within them.
- A product mindset: you want to understand the business domain and use that understanding to shape what gets built, not only how. You're comfortable pushing back or proposing a different approach when your read of the data and the domain calls for it.
- Strong communication skills: you can explain and build support for your ideas with peers, managers, and non-technical stakeholders, and you're comfortable holding a visible technical position and bringing people with you.
- AI as a default part of how you work, with evidence of real efficiency gains and creative use beyond code generation, such as research, building domain knowledge, or prototyping.
- Nice to have: exposure to the building blocks of AI-ready data, such as semantic layers, ontologies, or text-to-SQL, plus any experience applying AI operationally within data platforms or pipelines. This won't be your main focus, but it will help as our platform grows to support an MCP.
Please note, this role is remote - UK only and we cannot provide sponsorship for this position. Anyone not based in the UK or that requires sponsorship to work in the UK will not be considered at this time.
Remote Senior Data Engineer in Liverpool employer: Codat
Codat is an exceptional employer that fosters a culture of technical excellence and continuous improvement, making it an ideal place for Frontend Engineers looking to make a significant impact. With a strong emphasis on mentorship and collaboration, employees are encouraged to grow their skills while working on innovative projects in a fast-paced environment. The company's backing by industry leaders and its commitment to leveraging cutting-edge technologies provide unique opportunities for professional development and meaningful contributions to the future of commercial banking.
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We think this is how you could land Remote Senior Data Engineer in Liverpool
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We think you need these skills to ace Remote Senior Data Engineer in Liverpool
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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