At Genworth, we empower families to navigate the aging journey with confidence. We are compassionate, experienced allies for those navigating care with guidance, products, and services that meet families where they are. Further, we are the spouses, children, siblings, friends, and neighbors of those that need care—and we bring those experiences with us to work in serving our millions of policyholders each day. We apply that same compassion and empathy as we work with each other and our local communities. Genworth values all perspectives, characteristics, and experiences so that employees can bring their full, authentic selves to work to help each other and our company succeed. We celebrate our diversity and understand that being intentional about inclusion is the only way to create a sense of belonging for all associates. We also invest in the vitality of our local communities through grants from the Genworth Foundation, event sponsorships, and employee volunteerism. Our four values guide our strategy, our decisions, and our interactions: Make it human. Make it about others. Make it happen. Make it better.
Senior Data Engineer
Location
EST (UTC-5)
Posted
39 days ago
Salary
$114.9K - $227K / year
Seniority
Senior
Job Description
Senior Data Engineer
Genworth
Role Description We are seeking a highly skilled and experienced Senior Data Engineer to join our growing data and machine learning organization and help build the pipelines, models, and infrastructure that power our analytics, machine learning, and operational data needs. In this role, you will work closely with analysts, data scientists, ML/AI engineers, and product teams to design and deliver reliable, scalable data workflows on our Databricks Lakehouse platform. A successful candidate has strong engineering fundamentals, deep knowledge of modern data architectures, and experience transforming complex datasets into high-quality, well-modeled information that drives business impact. You’re comfortable owning end-to-end pipelines, improving data quality and reliability, and collaborating across teams. You thrive in environments where you can raise the bar on engineering excellence, build repeatable processes, and mentor others. What You’ll Do - Data Pipeline Engineering: - Design, build, and maintain scalable ETL/ELT pipelines using Spark, Python, SQL, and Databricks. - Implement reliable ingestion frameworks for batch and streaming data sources. - Ensure pipelines meet SLAs, data quality standards, and production-grade reliability. - Lakehouse Modeling & Architecture: - Develop robust data models across raw, curated, and semantic layers using Delta Lake. - Create dimensional models, star schemas, and domain-layer datasets for analytics and ML. - Establish and maintain standards for schema design, metadata, and lineage. - Data Quality & Observability: - Implement data validation, anomaly detection, SLAs, and documentation across pipelines. - Build automated tests, monitoring, and alerting for freshness, completeness, and accuracy. - Partner with platform teams to enhance observability and operational tooling. - Collaboration & Cross-Functional Support: - Work closely with analysts to understand business KPIs and deliver high-quality curated datasets. - Partner with ML engineers and data scientists to build reusable feature pipelines. - Collaborate with data platform engineers to optimize compute, governance, and orchestration. - Performance & Optimization: - Optimize Spark jobs, SQL queries, cluster configurations, and storage patterns for performance and cost. - Improve reliability, reduce technical debt, and simplify complex pipelines. - Security, Compliance & Governance: - Apply best practices for RBAC, data privacy, and PII handling using Unity Catalog. - Ensure adherence to compliance frameworks and documentation standards. - Continuous Learning: - Stay current on modern data engineering patterns, Lakehouse architecture, orchestration, and best practices. - Explore new technologies that improve reliability, scalability, and developer productivity. Qualifications - 7+ years of experience in data engineering or related roles. - Strong expertise with Python, SQL, Spark, and distributed data processing. - Hands-on experience with Databricks, Delta Lake, and Lakehouse architectures. - Deep understanding of ETL/ELT design, data modeling, and data quality practices. - Experience building scalable, production-grade data pipelines. - Experience collaborating with analytics, ML, and product teams. - Strong communication skills with the ability to clarify data requirements and explain technical decisions. Requirements - The base salary pay range for this role starts at a minimum rate of $114,900 up to the maximum of $227,000. - In addition to your base salary, you will also be eligible to participate in an incentive plan based on performance, with a target earning opportunity of 15% of your base compensation. - The final determination on base pay will be based on multiple factors including geographic location, experience, and qualifications. Benefits - Competitive Compensation & Total Rewards Incentives - Comprehensive Healthcare Coverage - Multiple 401(k) Savings Plan Options - Auto Enrollment in Employer-Directed Retirement Account Feature (100% employer-funded!) - Generous Paid Time Off – Including 12 Paid Holidays, Volunteer Time Off and Paid Family Leave - Disability, Life, and Long Term Care Insurance - Tuition Reimbursement, Student Loan Repayment and Training & Certification Support - Wellness support including gym membership reimbursement and Employee Assistance Program resources (work/life support, financial & legal management) - Caregiver and Mental Health Support Services
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