Imprint

Senior Business Intelligence Engineer

Imprint$120K — $150K *
Business Services
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years of experience delivering complex data solutions in high-scale environments
  • Strong SQL skills with ability to validate and direct queries
  • Familiarity with modern data stacks like Snowflake, dbt, and Looker
  • Proven stakeholder engagement to translate business needs into data solutions
  • Experience building widely adopted data products
  • Hands-on experience integrating AI tools into data workflows

Responsibilities

  • Design and maintain scalable data models and dashboards for critical reporting needs
  • Collaborate with cross-functional teams to understand and address data requirements
  • Ensure data quality and governance for BI assets through meticulous documentation
  • Develop reusable data definitions using dbt models
  • Leverage AI tools to streamline model development and dashboard creation
  • Establish best practices for data modeling, including naming conventions and testing
  • Identify and resolve performance issues across data pipelines and reporting layers
  • Facilitate self-service analytics by creating intuitive and usable data products
  • Proactively analyze data to uncover business opportunities
  • Integrate emerging AI tools to enhance team efficiency and workflow

Benefits

  • Competitive compensation and equity packages
  • Leading configured work computers of your choice
  • Flexible paid time off
  • Fully covered high-quality healthcare, including dependent coverage
  • Access to One Medical and optional FSA enrollment
  • 20 weeks of paid parental leave for primary caregivers and 8 weeks for all new parents
  • Access to industry-leading technology across all business units
Full Job Description

As a Senior BI Engineer, you will own the design, development, and delivery of data products that power business decisions across Imprint. This is a high-impact individual contributor role embedded at the intersection of data engineering and analytics - with AI as a core multiplier in how you work.

You will partner closely with teams across Engineering, Product, Finance, Marketing, and Operations to translate complex business questions into reliable, performant, and scalable BI solutions - from data modeling and pipeline development to dashboards and self-serve analytics infrastructure. You will leverage AI-assisted development tools (Claude, Codex, Cursor, etc.) to accelerate implementation, allowing you to focus your energy on the strategic thinking, problem framing, and stakeholder partnership that AI cannot replace.

This role blends technical depth with strong business judgment, and is best suited for someone who can move fluidly between writing production-grade SQL, architecting semantic layers, and sitting in a room with stakeholders to define what "good" looks like.

What Success Looks Like in the First 90 Days
  • Delivered at least one high-priority BI initiative end-to-end, from data model to stakeholder-facing dashboard
  • Built strong working relationships with key cross-functional stakeholders to understand data needs and priorities
  • Identified and addressed at least one significant gap in data reliability, model coverage, or reporting fidelity
  • Established or meaningfully improved documentation and discoverability standards for existing BI assets
  • Demonstrated effective use of AI-assisted workflows to accelerate delivery - using AI for implementation (SQL generation, model scaffolding, documentation) while applying human judgment to design, scoping, and quality assurance
  • Demonstrated clear judgment in prioritizing requests based on business impact and technical feasibility

Responsibilities
  • Design, build, and maintain scalable data models, semantic layers, and data visualizations that serve business-critical reporting needs
  • Partner with stakeholders across Engineering, Product, Finance, Marketing, and Operations to understand data requirements and translate them into reliable data solutions
  • Own data quality, documentation, and governance practices for BI assets - ensuring dashboards and models are accurate, trustworthy, and maintainable
  • Build and maintain dbt models to support consistent, reusable data definitions
  • Leverage AI-assisted development tools to accelerate model development, dashboard scaffolding, and documentation - treating AI as a productivity multiplier while owning the analytical design and validation
  • Develop and enforce best practices for data model development, such as naming conventions and testing standards
  • Identify and resolve performance bottlenecks in queries, pipelines, and reporting layers
  • Enable self-serve analytics by building machine-legible, intuitive data products that reduce ad hoc request volume
  • Use data to surface insights proactively - not just respond to requests, but identify gaps and opportunities in the business
  • Continuously evaluate and adopt emerging AI tooling to improve team velocity - contribute to defining how the BI team integrates AI into its standard workflows
  • Contribute to the broader data team's roadmap, tooling decisions, and infrastructure

Qualifications

Required
  • Demonstrated experience designing and delivering production-grade solutions in a complex, high-scale data environment
  • Deep proficiency in SQL and data modeling Strong SQL comprehension and data modeling skills - ability to read, validate, and direct complex queries is more important than raw writing speed given AI-assisted workflows
  • Experience with a modern data stack (e.g. Snowflake/Databricks, dbt, Sigma/Looker, etc.)
  • Strong ability to work directly with stakeholders - translating ambiguous business questions into clear, scoped data solutions
  • Track record of building data products that are adopted and trusted by non-technical users
  • Demonstrated experience building with AI tools (Claude, Codex, Copilot, Cursor, or similar) - not just awareness, but active integration into daily analytical and engineering workflows

Nice to Have
  • Experience in fintech, payments, lending, or regulated financial environments
  • Familiarity with data orchestration tools (e.g., Airflow)
  • Experience building or scaling BI infrastructure in a high-growth startup environment
  • Experience defining or implementing AI-augmented analytics workflows at a team level - e.g., AI-assisted code review, automated documentation, prompt-driven data exploration
  • Familiarity with agentic AI patterns (MCP, tool-use, context management) and how they apply to data workflows
  • Exposure to Python or other scripting languages for data transformation or automation
  • Track record of establishing BI governance or data quality frameworks from the ground up


Perks & Benefits
  • Competitive compensation and equity packages
  • Leading configured work computers of your choice
  • Flexible paid time off
  • Fully covered, high-quality healthcare, including fully covered dependent coverage
  • Additional health coverage includes access to One Medical and the option to enroll in an FSA
  • 20 weeks of paid parental leave for the primary caregiver and 8 weeks for all new parents
  • Access to industry-leading technology across all of our business units, stemming from our philosophy that we should invest in resources for our team that foster innovation, optimization, and productivity

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