Data Engineer - Data Platform

Mill

$185K — $210K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 3-5 years of experience in production data engineering systems
  • Expertise in building data pipelines using Python, SQL, and tools like dbt, Airflow, or Fivetran
  • Proficient in Infrastructure as Code practices with tools like Terraform
  • Experience with transactional databases, especially understanding OLTP vs warehouse workloads
  • Comfortable in a collaborative, dynamic work environment
  • Proactive attitude with a bias toward action

Responsibilities

  • Design, build, and support scalable data pipelines for product and operational systems
  • Manage and ensure reliability of data infrastructure for external customers and downstream analytics
  • Collaborate with software engineers to ensure effective data instrumentation for new product features
  • Develop and maintain the self-serve analytics platform using Hex and Snowflake
  • Maintain business logic and metrics relied upon by analysts and stakeholders
  • Implement data quality monitoring tools and frameworks to catch issues early

Benefits

  • Healthcare, dental, and vision insurance
  • 401(k) plan with company matching
  • Flexible working hours and remote work options
  • Continuous learning and professional development opportunities
  • Generous paid time off policy
Full Job Description
The Role

As a Data Engineer at Mill, you'll build and maintain the core data infrastructure that powers analytics and product data across the company - ingestion pipelines, warehouse modeling, data quality, and the self-serve analytics platform (Hex + Snowflake) our business teams rely on. You'll work closely with the Senior Data Engineer owning our recommendations platform, contributing to and supporting that work as needed, with the opportunity to grow into deeper recommendation/LLM-based work over time. You'll partner closely with product, engineering, data analytics, and marketing teams.
What You'll Do
  • Design, build, and maintain scalable data pipelines across Mill's product and operational systems
  • Manage and maintain data infrastructure that powers our product and operational systems, ensuring it's reliable and ready to feed external customers and downstream analytics
  • Collaborate with software engineers to instrument new product features and ensure event data flows cleanly
  • Help build and maintain the self-serve analytics platform in Hex and Snowflake for internal business teams
  • Help maintain the metrics, table endorsements, and business logic that analysts and stakeholders rely on
  • Own data quality monitoring - build alerting, validation frameworks, and observability tooling so data issues get caught before they become business problems
What We're Looking For
  • 3-5 years of experience operating data engineering systems in production
  • Have built and operated data pipelines in production using Python, SQL, and tools like dbt, Airflow, Fivetran, or similar against a cloud data warehouse (e.g., Snowflake)
  • Have used Infrastructure as Code (e.g., Terraform, Pulumi) to provision and manage data infrastructure, with CI/CD discipline for pipeline and infra changes (automated testing, staged rollout, rollback)
  • Experience working with transactional databases (e.g., PostgreSQL, Amazon RDS) as a data source, including understanding how OLTP systems differ from warehouse/analytical workloads
  • Comfort working in a collaborative environment where data consumers are partners, not just stakeholders, and comfort moving between different types of work as priorities shift
  • A bias toward action
Nice to Have
  • Exposure to recommendation, personalization, or LLM-based product logic - not required, but a strong plus given the team's direction
  • Experience building or supporting self-serve analytics tooling (Hex, Looker, or similar)
  • Exposure to distributed systems concepts (partitioning, consistency, fault tolerance)
  • Experience with Mixpanel, Tableau, or similar BI/analytics tools
  • Familiarity with data contract or data mesh patterns, or RBAC/access governance on a warehouse
  • Experience with event tracking or product analytics

The estimated base salary range for this position is $185k to $210k, which does not include the value of benefits or a potential equity grant. A wide range of factors are considered in making compensation decisions, including but not limited to skill sets, market conditions, experience and training, licensure and certifications, and business and organizational needs.

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