Sr Data Engineer
$84k - $128.67kProtective Services LLC
The work we do has an impact on millions of lives, and you can be a part of it. We help protect our customers against life’s uncertainties. Regardless of where you work within the company, you’ll be helping provide protection and peace of mind when our customers need it most. Protective is looking for Data Engineers to design, build, and operate production data pipelines on Voyager, our Databricks lakehouse on Azure. You will own the end-to-end flow of data through a medallion architecture — ingesting source data into the Bronze layer, applying cleansing, validation, and conformance in Silver, and publishing trusted, consumption-ready data products in Gold. This role sits at the intersection of engineering, analytics, and platform operations. You will write production-grade Python and SQL, enforce data contracts, and help Protective treat data as a product with named owners and real consumers. You will be embedded on a delivery pod that owns its data products end to end, rather than servicing tickets from a queue. On Voyager, the medallion layers are named Raw, Prep, and Prod. They map directly to Bronze, Silver, and Gold and are used interchangeably in this description. \n Key Responsibilities • Design, develop, and maintain production data pipelines on Databricks using Python, SQL, Apache Spark, and Delta Lake.
- Build Bronze-layer ingestion that reliably captures data from APIs, relational databases, flat files, cloud storage, and SaaS platforms — using dlt (dltHub) and Databricks-native ingestion where each fits — including incremental loading, pagination, watermarking, state management, and replay after failure.
- Develop Silver-layer transformations in dbt and Python over Delta Lake that cleanse, standardize, type, deduplicate, validate, conform, and enrich data so that it is reusable across domains. A meaningful share of this role is making messy source data trustworthy.
- Create Gold-layer data products: dimensional models, slowly changing dimensions, fact and bridge tables, aggregates, and serving tables aligned to how consumers actually query.
- Produce and maintain the curated datasets ML engineering trains and serves models from — feature and training tables that are versioned and reproducible, not one-off extracts.
- Author and maintain data contracts using the Open Data Contract Standard (ODCS) — schema with real semantics, named owner, known consumers, quality rules, and freshness expectations — and assess backward compatibility before every change.
- Implement data quality as code: uniqueness and not-null on keys at minimum, plus referential, accepted-value, freshness, and custom business-rule tests, surfaced to producers and consumers rather than buried in logs.
- Orchestrate ingestion and transformation as assets in Dagster, deployed to Dagster Cloud, and operate what you build across development, branch, and production deployments — schedules and sensors, asset dependencies, backfills, and run observability.
- Apply governance through Unity Catalog — catalogs, schemas, external locations, grants, row- and column-level security, and lineage — and handle credentials through Azure Key Vault rather than in code.
- Implement incremental and merge-based processing with Delta Lake (MERGE, schema evolution, time travel, OPTIMIZE) and tune Spark jobs, table layouts, and compute for performance and cost.
- Troubleshoot production failures, data-quality issues, source-system changes, and late-arriving or duplicate data — including backfills and recovery — and take part in the pod’s on-call rotation for the pipelines it owns, with root-cause analysis that closes the gap rather than reopening the ticket.
- Build and maintain CI/CD for data assets in Azure DevOps — automated tests and CI checks on dlt, dbt, and Dagster changes, promotion from development through branch deployments to production, and releases that are repeatable and auditable.
- Instrument what you own for observability: freshness, volume, quality, latency, and cost, with alerting tied to the SLAs and SLOs your contract commits to instead of depending on someone noticing.
- Work inside the platform’s control expectations — least-privilege access, secrets in Azure Key Vault, change management through pull request and pipeline, and audit evidence that falls out of the deployment path rather than being reconstructed later.
- Participate in code review and document architecture, runbooks, and data products so others can discover, trust, and reuse them.
- Work with data architects, analysts, product owners, and business stakeholders to translate requirements into maintainable data solutions. Qualifications Required Qualifications
- Bachelor’s degree in Computer Science, Information Systems, Engineering, or a related field; equivalent practical experience considered.
- 3+ years building and supporting production data pipelines in a cloud data platform environment.
- Strong hands-on Python and SQL. Both are used daily and neither substitutes for the other.
- Hands-on experience with Databricks or a comparable Spark-based lakehouse, including Delta Lake tables, MERGE, and incremental load patterns.
- Practical understanding of medallion / multi-layer lakehouse design, and the judgment to say what belongs in Bronze versus Silver versus Gold.
- Experience ingesting data from APIs, relational databases, files, or SaaS applications, including the incremental and state-management problems that come with it.
- Working knowledge of dimensional modeling — grain, keys, facts and dimensions, slowly changing dimensions — and of ELT design patterns and data quality practice.
- Experience with orchestration and scheduling using Dagster, Databricks Workflows, Airflow, Azure Data Factory, or similar.
- Git-based source control, pull request review, automated testing, and CI/CD as normal practice — Azure DevOps or comparable.
- Experience troubleshooting production data failures, performance bottlenecks, and source-system changes.
- Experience with pipeline monitoring and alerting, and a working understanding of what a freshness or quality SLA means once real consumers depend on it.
- Ability to explain technical designs and trade-offs to both technical and non-technical partners. Preferred Qualifications
- Databricks certification (Data Engineer Associate or Professional) or equivalent demonstrated depth.
- Unity Catalog experience: catalogs, schemas, volumes, external locations, storage credentials, permissions, and lineage.
- dbt on Databricks, or another transformation framework used alongside Spark.
- Python-based modeling frameworks over Delta Lake, and experience implementing Type 2 history, surrogate keys, and merge strategies in code.
- Experience with a declarative Python ingestion framework such as dlt (dltHub), Airbyte, Meltano, or Fivetran.
- Dagster experience specifically, including assets, asset checks, sensors, schedules, and branch deployments. \n$84,000 - $128,667 a year Protective’s targeted salary range for this position is $84,000 to $128,667. Actual salaries may vary depending on factors, including but not limited to, job location, skills, and experience. The range listed is just one component of Protective’s total compensation package for employees. This position also offers additional incentive opportunities through an annual incentive based on individual and Company performance. #LI-VG1 \n Employee Benefits:
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