Manager, Analytics Engineering

Posted 2 Days Ago
Be an Early Applicant
Hiring Remotely in USA
Remote
165K-195K Annually
Junior
eCommerce • Insurance • Software
The Role
Lead and manage a remote analytics engineering team responsible for Extend’s Snowflake warehouse, dbt repository, ingestion pipelines, data models, monitoring, and quality standards. Oversee hiring and development, architecture, platform migrations, reliability, incident response, documentation, and self-service analytics. Partner with actuarial, risk, fraud, product, finance, and operations teams to establish trusted shared data definitions and prioritize platform improvements.
Summary Generated by Built In

About Extend:

Extend is revolutionizing the post-purchase experience for retailers and their customers by providing merchants with AI-driven solutions that enhance customer satisfaction and drive revenue growth. Our comprehensive platform offers automated customer service handling, seamless returns/exchange management, end-to-end automated fulfillment, and product protection and shipping protection alongside Extend's best-in-class fraud detection. By integrating leading-edge technology with exceptional customer service, Extend empowers businesses to build trust and loyalty among consumers while reducing costs and increasing profits.

Today, Extend works with more than 1,000 leading merchant partners across industries, including fashion/apparel, cosmetics, furniture, jewelry, consumer electronics, auto parts, sports and fitness, and much more. Extend is backed by some of the most prominent technology investors in the industry, and our headquarters is in downtown San Francisco.
About the Role:

Extend powers product protection, shipping protection, and warranty programs for hundreds of merchants. The data those programs generate drives pricing and actuarial modeling, risk and loss analysis, fraud detection, product and merchant analytics, and financial and revenue reporting.

The Analytics Engineering team owns the platform behind all of it: the Snowflake warehouse and dbt repository the company reports from, the ingestion that feeds them, and the pipelines and monitoring that keep them running. Analytics, Actuarial, Risk, Fraud, Product, Operations, Finance, Accounting, and Revenue all build on what this team produces.

We’re looking for a Manager, Analytics Engineering to lead that team. You’ll report to our Senior Engineering Manager, Data Engineering. The role is hands-on, leading a remote team of analytics and data engineers. 

What You’ll Do:
  • Manage and grow the team. Hiring, onboarding, career development, and performance.
  • Set the technical bar and own the dbt repository as a shared platform. Review pull requests, make the architecture calls, and set the standard for tests, documentation, and CI for your team and for every team that ships models into the repo. Partner teams own the business logic in their models; you own the platform and standards they ship into. Keep change control rigorous and fast.
  • Own the warehouse and pipelines. Snowflake, dbt, source ingestion and freshness, external tables, and the AWS Glue/CDK jobs that feed them.
  • Model the core business domains. Orders, contracts, claims, and service orders, defined once so actuarial, risk, fraud, product, and finance all get the same answer. Evolve these models as upstream product systems change, and consolidate warehouse modeling onto the shared platform.
  • Evolve the platform. Lead platform migrations, including moving dbt execution to Snowflake-native tooling, and retire legacy components on a planned timeline.
  • Partner across the business. Build trusted relationships with internal stakeholders by translating their questions into models, aligning them on shared definitions, and shaping roadmap priorities so the platform serves the whole business.
  • Harden data quality. Schema validation that quarantines bad records without interrupting scheduled refreshes, plus freshness and critical-service audits with named owners.
  • Run platform operations. On-call, monitoring, alerting, incident triage, and root-cause follow-through.
  • Enable self-service. Documentation, semantic consistency, and BI access so partners can answer their own questions.
  • Automate operational work. Extend the AI-assisted workflows already running in production for alert triage, refresh requests, and file processing.
What We’re Looking For:
  • 2+ years managing engineers. Hiring, performance, and career development on a data or analytics engineering team. Prior management experience is expected, though we will consider lead engineers who have owned technical direction and developed the engineers around them.
  • Advanced SQL and dimensional modeling. You have modeled a business domain for consumers with competing needs and kept it consistent as requirements changed.
  • Deep dbt experience. You have owned a repository under version control with testing, PR review, CI, and change control, and you set that standard rather than working within one.
  • Pipeline engineering. Python and cloud data infrastructure. We run on AWS with Glue, Step Functions, Lambda, and CDK.
  • Reliability ownership. You have run on-call for a data platform, built alerting that teams trust, and led incident response.
  • Analytical partnership. You’ve supported analysts, data scientists, or quantitative teams, and can translate a business question into a data model.
  • Clear written communication. Architecture proposals, incident reviews, and candid tradeoff summaries for partners with different priorities.
  • Prioritization judgment. You prioritize deliberately across many requests and communicate the tradeoffs clearly.
  • Bonus: actuarial, risk, or fraud analytics; warranty, insurance, or service-contract programs; financial and revenue reporting; privacy and deletion compliance at scale; BI administration; or AI-assisted engineering workflows.

Expected Pay Range: $165,000 - $195,000 per year salaried*

*The target base salary range for this position is listed above. Individual salaries are determined based on a number of factors including, but not limited to, job-related knowledge, skills and experience.

Extend does not provide immigration-related sponsorship for this role.

Life at Extend:

  • Working with a great team from diverse backgrounds in a collaborative and supportive environment.
  • Competitive salary based on experience, with full medical and dental & vision benefits.
  • Stock in an early-stage startup growing quickly.
  • Generous, flexible paid time off policy.
  • 401(k) with Financial Guidance from Morgan Stanley.

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Skills Required

  • 2+ years managing engineers, including hiring, performance management, and career development on a data or analytics engineering team
  • Advanced SQL and dimensional modeling experience
  • Deep experience owning a dbt repository with version control, testing, pull request review, CI, and change control
  • Pipeline engineering experience with Python and cloud data infrastructure
  • Experience with AWS data services and infrastructure, including Glue, Step Functions, Lambda, or CDK
  • Experience owning reliability for a data platform, including on-call, alerting, monitoring, and incident response
  • Experience supporting analysts, data scientists, or quantitative teams and translating business questions into data models
  • Clear written communication, including architecture proposals, incident reviews, and tradeoff summaries
  • Strong prioritization and ability to communicate tradeoffs across competing requests
  • Experience with actuarial, risk, fraud analytics, warranty, insurance, service-contract programs, financial reporting, privacy compliance, BI administration, or AI-assisted engineering workflows
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The Company
HQ: San Francisco, CA
181 Employees
Year Founded: 2019

What We Do

Extend allows any merchant to offer extended warranties and protection plans through our easy-to-integrate APIs or pre-built eCommerce applications. We power extended warranties both online and offline while also providing consumers with a modern, digitally native experience that eliminates the issues customers face today with legacy offerings.

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