Senior Data Platform Engineer; Python & Databricks
Listed on 2026-09-01
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Software Development
Python, Data Engineering
About Codelitt
At Codelitt we are more than a product-development company. We are creators innovators and problem solvers.
We partner with companies around the world to design and build meaningful digital products modernize complex systems and solve challenging technical problems. Our globally distributed team values technical excellence ownership proactive communication and collaboration.
About the RoleWe are looking for a Senior Data Platform Engineer to join a high-impact engagement with one of our partners a global leader in wealth-management technology.
This is a hybrid position to work in our office in Edinburgh. Here youll find our office location. We expect the engineer working in this position to go to the office between 1 to 2 times per week.
You will help build and evolve a financial data platform developed on top of Databricks and used by major enterprise clients. The platform supports the ingestion transformation modeling and delivery of complex financial data.
This is primarily a backend and data-platform position. You will work across Python services APIs data pipelines and data models while collaborating closely with an established engineering team in Edinburgh.
The ideal candidate has substantial hands-on Databricks experience and can become productive in a complex data environment. You should be comfortable taking ownership of well-defined areas of work while gradually building a broader understanding of the platform.
We process our payment in US dollars however you can receive it in your local currency.
Build and maintain components of a large-scale financial data platform.
Develop reliable data pipelines for ingesting transforming and delivering financial data.
Design data models that support enterprise reporting analytics and downstream integrations.
Improve the performance reliability maintainability and observability of existing data workflows.
Troubleshoot complex issues across data-processing and application layers.
Design build and maintain production-grade applications and services using Python.
Develop well-structured APIs for accessing and managing data-platform capabilities.
Write clean testable maintainable and well-documented code.
Participate in architectural and technical-design discussions.
Review code and help maintain a high engineering standard across the team.
Build and operate production workloads using Databricks.
Help improve the organization and execution of Databricks-based data workflows.
Work with large datasets and complex transformation requirements.
Apply Databricks best practices to improve scalability reliability and developer productivity.
Work directly with engineers and technical leaders from both Codelitt and our partner.
Collaborate with a hybrid engineering team based in Edinburgh.
Break complex requirements into clear and manageable technical tasks.
Communicate progress risks dependencies and blockers proactively.
Take ownership of assigned initiatives from technical discovery through delivery.
Contribute to documentation and internal knowledge sharing.
Five or more years of professional software-engineering experience.
Strong professional experience developing production applications with Python.
Hands-on experience building production workloads with Databricks.
Experience designing and maintaining data pipelines.
Strong understanding of data modeling and data-processing concepts.
Experience designing or consuming APIs in distributed systems.
Experience working with relational databases and SQL.
Strong automated-testing and software-quality practices.
Experience working with version control code review and CI/CD workflows.
Ability to understand and contribute to an established complex codebase.
Strong written and verbal English communication skills.
Ability to work independently while collaborating closely with a broader engineering team.
Ability to attend the Edinburgh office regularly typically one to two days per week.
Experience building data platforms for financial-services or other data-intensive industries.
Experience with cloud-based data architectures.
Familiarity with infrastructure-as-code tools such as Terraform.
Experience improving the observability and operational reliability of data pipelines.
Familiarity with modern data governance access-control and data-quality practices.
Experience working in an enterprise environment with strict security and compliance requirements.
Front-end experience with React or another modern JavaScript framework.
Front-end development and infrastructure work may occasionally be required but they are not the primary focus of this position. Deep Kubernetes expertise is not required.
Who You Are Databricks ExperiencedYou have used Databricks in a real production environment and understand how to build maintain and troubleshoot data workloads on the platform.
Python FocusedYou can design and…
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