Live opening · Posted 3 days ago

Senior Data Engineer (Investment Data)

Luxoft · Poland (Remote)
Linkedin Yes
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At a glance

The key details from the original listing.

Posted 3 days ago
CompanyLuxoft
LocationPoland (Remote)
Work modeYes
SourceLinkedin
Listed3 days ago

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About the role

Description supplied by the original job listing.

🔥Become a Luxoft employee🔥
Our Benefits:
💰Paid Referrals
💻Equipment: laptop and monitor
🩺Private Medical & Dental care & Life Insurance covered
🏋🏽 ♀️ MyBenefit program (sports card, well-being program etc.)
🌎 Internal Mobility program - possibility of rotation between projects, locations, accounts
🎓 LuxTalent platform (webinars, training, courses)
...and more!
Project Description:
We’re looking for an experienced, hands-on Data Engineer who is capable of designing, building, and operating data pipelines and models that power analytics and applications across investment teams and Middle/Back office. The ideal candidate has financial markets familiarity (securities, prices, corporate actions, positions/holdings) and thrives in ambiguous environments—proactively shaping solutions, not waiting for tickets. You’ll own data end-to-end: from ingesting vendor and internal sources, to modeling in our lakehouse, to making data discoverable, reliable, and cost-efficient. You’ll partner closely with BAs/PMs and quants, anticipate downstream needs, and propose pragmatic architectures that balance speed, governance, and scalability.
Responsibilities:
• Participate in requirements clarification and sprint planning sessions.
• Design technical solutions and implement them, inc ETL Pipelines – Build robust data pipelines in PySpark to extract, transform, using PySpark
• Optimize ETL Processes – Enhance and tune existing ETL processes for better performance, scalability, and reliability
• Writing unit and integration tests.
• Support QA teammates in the acceptance process.
• Resolving PROD incidents as a 3rd line engineer.
Mandatory Skills Description:
• Bachelor’s degree (Computer Science, Engineering, Information Systems, or related discipline).
• 5+ years experience in data engineering roles (flexible based on depth of capability).
• Strong hands-on experience with Databricks in production environments (prerequisite).
• Strong programming experience with PySpark (must) and strong SQL (must).
• Proven experience with Declarative Pipelines / pipeline orchestration on Databricks (prerequisite).
• Strong understanding of data engineering fundamentals: ingestion patterns, transformation design, incremental processing, testing, performance tuning.
• Experience delivering production-ready datasets with appropriate operational controls (monitoring, troubleshooting, reliability patterns).
• Experience with modern Lakehouse concepts (Delta tables, optimization strategies, file skipping, metadata/statistics awareness).
• Exposure to data governance practices: cataloguing, documentation, business glossary/terms, lineage.
• Experience working in enterprise environments with CI/CD pipelines and structured release processes.
• Familiarity with vendor market data feeds (e.g., Bloomberg, Refinitiv, MSCI, FactSet) or similar multi-source mastering patterns.
Nice-to-Have Skills Description:
• Strong Hands-on Expertise in Palantir Foundry. Proven experience with Foundry pipelines, ontologies, data lineage, transformations, and platform governance.
• Proven Migration Experience from Palantir / to Databricks. Demonstrated experience leading or executing platform migrations, including pipeline conversion, data model redesign, and production cutover.
• Familiarity with Dynatrace or Datadog for system observability and monitoring.
• Databricks certification, cloud certifications (Azure/AWS), or enterprise data architecture certifications.
Languages:
English: B2 Upper Intermediate

Work arrangement
Yes

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