Finance Technology Data Solutions Engineer
Jobgether
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Questions you are likely to be asked
- Why do you want to join Jobgether?
- What is your experience with Databricks? Tell me one thing you learned the hard way.
- How do you decide what to test, and what does good code review look like to you?
- Describe a time a deadline forced a trade-off in quality. What did you choose and why?
- How would you design an API for a feature you have worked on?
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Practise the Finance Technology Data Solutions Engineer at Jobgether interview free →Accountabilities:: Build, maintain, and support data solutions for fund accounting, investment operations, and finance reporting. Develop data integrations, transformations, pipelines, and data products using Databricks, Python, PySpark, and SQL. Implement and maintain financial data reconciliations, controls, and validation processes. Work with fund accounting processes including NAV calculation, accruals, corporate actions, fees, and month-end close. Process and integrate investment data covering positions, transactions and trades, security master data, pricing, cash, and general ledger information. Optimize complex SQL queries, data pipelines, and large-scale processing workloads for performance and reliability. Work with cloud-based data platforms and support scalable data engineering solutions. Collaborate directly with US-based stakeholders to understand requirements and deliver effective data solutions. Contribute to data quality, testing, CI/CD, and operational improvements across financial data pipelines. Requirements: 10+ years of hands-on data engineering experience, with a strong individual contributor focus rather than team leadership or architecture. Strong, recent hands-on experience with Databricks, including Delta Lake, notebooks, jobs, and workflows; Unity Catalog experience is preferred. Strong understanding of fund accounting processes, including NAV calculation, accruals, corporate actions, fees, and month-end close. Advanced Python and PySpark skills for large-scale data processing. Proven experience delivering data solutions within Financial Services, with Asset Management, Investment Management, Fund Administration, Custody, or Capital Markets experience strongly preferred. Experience developing reconciliations and data controls within financial or regulated environments. Strong understanding of investment data, including positions, transactions, security master, pricing, cash, and general ledger data. Expert SQL skills, including complex joins, window functions, and performance tuning. Experience with at least one cloud platform, such as Azure or AWS. Strong written and spoken English, with confidence communicating directly with US stakeholders. Databricks Data Engineer or Azure/AWS data engineering certification is a plus. Experience with Azure Data Factory, Airflow, Databricks Workflows, or Fivetran is beneficial. Familiarity with Snowflake, dbt, Power BI, or Tableau for downstream reporting is a plus. Experience with Git, Azure DevOps, GitHub Actions, CI/CD, and unit testing for data pipelines is beneficial. Finance Management and a BE, BTech, or MCA qualification are advantageous. Benefits: Fully remote working model. Part-time or full-time employment options. Opportunity to work on financial data solutions supporting fund accounting and investment operations. Direct collaboration with US-based stakeholders. Exposure to Financial Services and asset management data environments. Hands-on work with Databricks, cloud data platforms, Python, PySpark, and modern data engineering technologies. Opportunity to contribute to data solutions involving reconciliations, controls, reporting, and regulated financial processes.
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Listed on lever · posted 2026-09-28. ApplySarthi collects openings and links to application pages; the role is advertised by Jobgether, not by us.