Senior Associate - Analytics Engineer

Posted 2 Days Ago
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New York, NY, USA
Hybrid
124K-177K Annually
Senior level
Artificial Intelligence • Cloud • Fintech • Information Technology • Insurance • Financial Services • Big Data Analytics
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The Role
Lead design and delivery of scalable analytics engineering solutions: build dbt transformation pipelines on Databricks/Postgres/BigQuery, develop tested dimensional models and feature tables, implement data quality and governance, improve SDLC and CI/CD, create reusable dbt patterns and semantic metrics, and engage stakeholders to translate requirements and mentor junior engineers.
Summary Generated by Built In
Location Designation: Hybrid - 3 days per week
Role Overview
The Senior Associate, Analytics Engineer is a practitioner who designs and implements scalable analytics engineering solutions with a high degree of independence. You lead your own workstreams end-to-end - from source alignment and data modeling through testing, deployment, and quality monitoring - engaging with the Analytics Engineering Lead and senior engineers for input on the most complex architectural decisions.
You are technically strong, self-directed, and effective at translating business requirements into well-structured engineering work. You exercise independent judgment in selecting approaches and techniques, engage directly with business stakeholders to understand requirements, and provide input into team-level goals and delivery planning. You advise peers on data modeling and analytics engineering best practices, and actively contribute to improving the team's SDLC practices.
What You'll Do:
Pipeline Design & Data Product Delivery
  • Lead, with support from the Analytics Engineering Lead, the design and implementation of scalable dbt transformation pipelines across Databricks, Postgres and Bigquery - covering layered modeling (staging / intermediate / mart), incremental strategies, and source contract definitions.
  • Design and build well-tested, documented data products - dimensional models, aggregates, and feature tables.
  • Develop solutions to complex data transformation problems using advanced SQL and Python, selecting the right approach based on evaluation, judgment, and the performance and maintainability requirements of the platform.
  • Optimize and tune transformation pipelines for performance, cost efficiency, and incremental processing at scale - independently identifying bottlenecks and driving improvements.
  • Own your data products end-to-end: source alignment, modeling, testing, documentation, deployment, and post-release monitoring, with awareness of downstream BI and AI/ML dependencies.

Data Quality, Governance & SDLC
  • Lead, with support from senior engineers, the availability, usability, integrity, and security of data within your domain - ensuring data is consistent, trustworthy, and governed in accordance with enterprise standards.
  • Implement robust dbt test frameworks, source freshness checks, and data quality monitoring patterns that make pipeline health observable and failures diagnosable.
  • Apply governance standards at the analytics layer: column-level PII tagging, access control integration, and lineage documentation that supports the enterprise data catalog.
  • Lead efforts to improve SDLC practices within the team - contributing to and helping establish CI/CD pipelines, automated testing, branching conventions, and PR review standards.
  • Maintain data catalog entries for all owned assets: lineage, ownership, grain documentation, and business glossary alignment.

Innovation & Pattern Development
  • Develop and maintain reusable macro libraries and dbt modeling patterns that enforce consistency and accelerate delivery across the analytics engineering surface.
  • Participate in semantic layer development - building MetricFlow-based metric definitions that provide a governed, authoritative source of business logic decoupled from downstream consumption.
  • Contribute to self-healing pipeline patterns and agentic pipeline construction approaches - prototyping and implementing automated anomaly detection, quality remediation, and LLM-assisted transformation generation.
  • Support context graph construction that captures relationships between business entities and data assets, enabling richer AI reasoning and cross-domain signal integration.
  • Stay current with the dbt ecosystem, Databricks and BigQuery platform releases, and the broader analytics engineering field - bringing concrete, evaluated recommendations back to the team.

Stakeholder Engagement & Collaboration
  • Engage directly with business stakeholders, data scientists, and ML engineers to understand data requirements - translating them into well-scoped Jira stories with clear acceptance criteria, grain definitions, and delivery estimates.
  • Partner with Integration Services on ingestion design to ensure source data arrives in shapes that are transformation-ready, correctly typed, and well-governed before reaching the analytics layer.
  • Collaborate with data stewards across NYL to resolve data quality issues at the source - driving shared accountability for data integrity rather than working around upstream problems.
  • Communicate technical decisions, modeling trade-offs, and delivery status clearly to the Analytics Engineering Lead and cross-functional partners, adapting style and depth for technical and non-technical audiences.
  • Advise junior engineers on data modeling approaches, dbt patterns, SQL craft, and analytics engineering best practices through code review and pair-modeling sessions.

What You'll Bring:
Required
  • 4+ years of progressive data engineering experience with a strong focus on analytics engineering and transformation pipeline development in production cloud environments.
  • Strong command of advanced SQL - window functions, CTEs, performance optimization, and complex multi-source joins - and solid Python proficiency for data engineering tasks.
  • Hands-on dbt experience: layered modeling, incremental models, source definitions, singular and generic tests, macros, and multi-environment project configuration.
  • Experience with cloud data platforms - Databricks and/or BigQuery required; experience with Snowflake or Redshift a plus.
  • Understanding of ELT patterns, dimensional modeling, and the design of scalable analytical data products with clear grain, ownership, and consumer contracts.
  • Proficiency with Git and collaborative development workflows: branching strategy, PR review, and CI/CD pipeline integration.
  • Experience working in Agile/Scrum delivery environments with structured sprint planning, backlog grooming, and milestone tracking.
  • Clear written and verbal communication skills - able to explain technical decisions, document data products, and engage effectively with both engineering and business stakeholders.

Preferred
  • Exposure to semantic layer tooling - dbt Semantic Layer / MetricFlow, Looker LookML, or equivalent - and experience building metric definitions consumed by BI or AI systems.
  • Familiarity with agentic AI concepts and interest in applying LLM-assisted tooling to pipeline construction, data quality remediation, or transformation pattern generation.
  • Experience with data observability tooling (Monte Carlo, Anomalo, or dbt built-in monitoring patterns) and building self-monitoring pipeline patterns.
  • Exposure to graph data models, knowledge graphs, or context graph construction for AI or analytics use cases.
  • Experience with data catalog and lineage platforms (Dataplex, DataHub, Alation) and column-level governance tagging practices.
  • Insurance or financial services industry experience, with familiarity with data privacy standards and enterprise compliance requirements.

Pay Transparency
Salary Range: $124,000-$177,000
Overtime eligible: Exempt
Discretionary bonus eligible: Yes
Sales bonus eligible: No
Actual base salary will be determined based on several factors but not limited to individual's experience, skills, qualifications, and job location. Additionally, employees are eligible for an annual discretionary bonus. In addition to base salary, employees may also be eligible to participate in an incentive program.
Company Overview
At New York Life, our 180-year legacy of purpose and integrity fuels our future. As we evolve into a more technology-, data-, and AI-enabled organization, we remain grounded in the values that drive lasting impact.
Our diverse business portfolio creates opportunities to make a difference across industries and communities-inviting bold thinking, collaborative problem-solving, and purpose-driven innovation. Here, you'll find the rare balance of long-standing stability and forward momentum, supported by an inclusive team that honors tradition while embracing progress.
As a Fortune 100 mutual company, we offer a place to grow your skills, contribute to meaningful work, and deliver solutions that matter. Your ideas drive what's next, and your growth powers it.
Our Benefits
We provide a full package of benefits for employees - and have unique offerings for a modern workforce, including leave programs, adoption assistance, and student loan repayment programs. Based on feedback from our employees, we continue to refine and add benefits to our offering, so that you can flourish both inside and outside of work.Click hereto discover more about our comprehensive benefit options or visit our NYL Benefits Site.
Our Commitment to Inclusion
At New York Life, fostering an inclusive workplace is fundamental to who we are and how we serve our communities. We have a longstanding commitment to creating an environment where individuals can contribute their best and succeed together. This foundation is rooted in our core values of humanity and integrity, ensuring that every employee feels valued and supported. By embracing a broad range of perspectives and experiences, we achieve greater success and fulfill our promise of providing financial security and peace of mind to families across all communities. Click here to learn more about New York Life's leadership in this space.
Recognized as one of Fortune's World's Most Admired Companies, New York Life is committed to improving local communities through a culture of employee giving and volunteerism, supported by the Foundation. We're proud that due to our mutuality, we operate in the best interests of our policy owners. To learn more about career opportunities at New York Life, please visit the Careers page of www.NewYorkLife.com.
Visit our LinkedIn to see how our employees and agents are leading the industry and impacting communities.
Visit our Newsroom to learn more about how our company is constantly evolving to meet our clients' and employees' needs.
Job Requisition ID: 94386
#BI-Hybrid

Skills Required

  • 4+ years data engineering experience with strong focus on analytics engineering and transformation pipelines
  • Advanced SQL proficiency (window functions, CTEs, performance optimization, complex joins)
  • Python proficiency for data engineering tasks
  • Hands-on dbt experience: layered modeling, incremental models, source definitions, tests, macros, multi-environment configuration
  • Experience with cloud data platforms (Databricks and/or BigQuery)
  • Understanding of ELT patterns, dimensional modeling, and designing analytical data products with defined grain and contracts
  • Proficiency with Git and collaborative development workflows, PR review, and CI/CD integration
  • Experience working in Agile/Scrum delivery environments
  • Clear written and verbal communication skills for technical and non-technical audiences

What the Team is Saying

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New York Life Insurance Company Compensation & Benefits Highlights

  • Retirement Support The package includes both a 401(k) with company match and, for many roles, a defined‑benefit pension, with day‑one vesting on the match highlighted for corporate employees. Financial professionals who qualify may also access a defined‑benefit plan and a 401(k).
  • Parental & Family Support Fertility support, adoption assistance, backup childcare, and free 24/7 online tutoring complement expanded Paid New Parent benefits that provide time off for all parents, with additional paid weeks typically available for birthing parents via short‑term disability. EAP resources and paid time off (including bereavement and volunteer time) further reinforce family support.
  • Healthcare Strength Medical, dental, and vision plans are augmented by a company‑funded HRA option with wellness earn‑ups and FSAs for health and dependent care. Wellness resources and commuter benefits add practical support to everyday wellbeing.

New York Life Insurance Company Insights

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The Company
HQ: New York, NY
12,000 Employees
Year Founded: 1845

What We Do

At New York Life, our 180-year legacy of integrity, mutuality, and financial strength fuels a future defined by bold transformation. As the largest mutual life insurance company in the U.S., we operate on behalf of our policy owners—not shareholders. That structure allows us to take a long-term view, investing in people, purpose, and innovation that endures. Guided by a clear enterprise vision to become a technology-, data-, and AI-powered company, we’re modernizing our platforms, rearchitecting experiences, and embedding intelligence across our products and services. Our mission has always been about helping people through life’s most meaningful moments. Today, technology is amplifying that mission—enabling us to serve clients, advisors, and communities in more personalized, proactive ways. With a diversified business portfolio spanning insurance, investments, retirement, group benefits, and direct-to-consumer offerings, New York Life delivers the stability of a Fortune 100 company with the agility of one that’s continuously evolving. We’re powered by a values-led culture, inclusive teams, and a shared belief that when our people thrive, so does our company. Here, tradition fuels momentum—and your ideas, energy, and growth power what’s next.

Why Work With Us

New York Life is transforming from the inside out—blending 180 years of trust with the velocity of innovation. What makes us different is our culture: grounded in integrity, humanity, and shared success—values that show up in how we work, lead, and grow. If you want a place where innovation has purpose—build what's next with us.

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Employees engage in a combination of remote and on-site work.

Typical time on-site: Not Specified
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