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Mercury

Senior Analytics Engineer

  • Remote
  • 6+ years

Salary

$166,600 - 208,300/ year

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Description

In 1989, Tim Berners-Lee wrote a proposal for CERN. CERN lost knowledge when people left, because its information was in many systems that did not connect. His solution was simple: link documents so that all people can find them and use them. That proposal became the World Wide Web.

Mercury has a similar challenge with data. Teams, models, and AI agents need data that they can find, understand, and trust. We are building an AI-native data platform that enables Mercury to have reliable analytics, accelerate product development, and enable the next generation of AI-powered products and internal tools.

We are hiring a Senior Analytics Engineer to help us accelerate. You’ll join a team of high-performing Data and Analytics Engineers building the shared foundations that power decisioning, automation, and measurement across the company, collaborating closely with Data Scientists and partners in Product, Engineering, and Operations. Your curiosity and bias toward action will drive meaningful impact as you build durable data products, unlock faster experimentation, and help teams ship propensity models, agentic workflows, and amazing data-driven experiences for our customers. Come grow with us.

Responsibilities

  • Design and build scalable data pipelines and business-conformed dimensional data marts in collaboration with Data Science, Engineering, Product, and Operations departments
  • Support the development and adoption of agentic tooling. We have our own AI Data Analyst (Hermes) and dbt Agent (Ralph) that are built and managed by our Analytics Engineers
  • Support self-service analytics workflows, Analytics Engineering skills, and dimensional data principles through implementation, education, and peer support
  • Help us implement the data and analytics products we’ll need to effect our bank charter
  • Contribute to the evolution of our data quality, governance, and security strategies
  • Contribute to our definition of Analytics Engineering standards and best practices
  • You may be a good fit if you:
  • Have 4+ years of Analytics or Data Engineering experience
  • Have expertise working in a full modern data stack including Fivetran / Airflow / Snowflake / dbt / Omni / Hex or equivalents
  • Are proficient with SQL and have working experience with Python
  • Proficient using AI agents to accelerate your and your teammates’ work
  • Have experience with dimensional data modeling principles and building data for scale
  • Treat data products as a platform by prioritizing reusable, scalable deliverables
  • Deliver readable code, strong tests, and quality documentation
  • Experiment responsibly and share what you learn so everyone benefits
  • Practice relentless empathy by meeting your stakeholders in Data, Product, Engineering, and beyond where they’re at and helping them succeed
  • Discern what’s needed from what’s wanted to deliver maximum impact
  • Strong candidates may additionally have:
  • Banking or financial services industry experience
  • Experience with agentic development and/or analytics workflows
  • Exposure to data governance, compliance, and security best practice
  • A full-stack mindset and willingness to solve problems end-to-end by flexing into Data Engineering and Data Analysis
  • If this role interests you, we invite you to explore our public demo at demo.mercury.com .
  • Mercury is a fintech company, not an FDIC-insured bank. Banking services provided through Choice Financial Group and Column N.A., Members FDIC.
  • LI-GC1
  • Total Rewards
  • The total rewards package at Mercury includes base salary, equity (stock options/RSUs), and benefits.
  • Our salary and equity ranges are highly competitive within the SaaS and fintech industry and are updated regularly using the most reliable compensation survey data for our industry. New hire offers are made based on a candidate’s experience, expertise, geographic location, and internal pay equity relative to peers.
  • Our target new hire base salary ranges for this role are the following :
  • US employees (any location):
  • $166,600 - $208,300 USD
  • Canadian employees (any location):
  • $157,400 - $196,800 CAD

Where you’d work

Fully remote

You can work from

  • United States
  • Canada

About the company

Mercury

  • Industry: FinTech

19 of their 19 open roles are remote

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  • Must-haves
Details12 facts · Role, Location, Compensation, Company
Tech stack
  • Python
  • SQL
  • dbt
  • Snowflake
  • Airflow
Seniority
Senior
Equity
Equity offered
Industry
FinTech
Specialty
BI
Region
United States
Show 6 more factsShow less

Role

Category
Data & Analytics
Specialty
BI
Seniority
Senior
Experience
4+ years
Tech stack
  • Python
  • SQL
  • dbt
  • Snowflake
  • Airflow

Location

Work model
Remote
Region
United States
Remote from
  • United States
  • Canada

Compensation

Salary
$166,600 - 208,300 / year
Pay period
Annual
Equity
Equity offered

Company

Industry
FinTech

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