Head of Data Analytics
Quick Overview
Job Description
Title: Head of Data Analytics
Location: Remote
Company Overview
- App with over 85 million installs, aiming to become a connected care platform.
- Functioning like a startup with the stability of a public company; team size is 30-35.
Role Requirements
- Looking for a head of data analytics with strong analytics skills, not heavy on data engineering.
- Must have consumer app experience, familiarity with onboarding funnels, and consumer marketing.
Candidate Requirements
- Must be a strategic communicator, able to work with executives and tell data stories effectively.
- Needs to have experience in advanced analytics, SQL, and ideally some Python.
Ideal Candidate Profile
- Strong business sense, possibly with a consulting background; able to be a thought partner at the executive level.
- Should be a balanced player-coach, competent in managing a small team while being hands-on.
Pain Points
- Difficulty finding candidates who can bridge technical skills and executive communication.
- Challenge in aligning candidate expectations with the role''s strategic and hands-on requirements.
Interview Process
- Involves multiple stakeholders: head of engineering, head of product, and a data exercise.
- Series of 30-45 minute meetings to assess fit and skill level.
Seniority
- 6+ years of experience in data analytics for consumer products with experience leading teams
- Work experience
- 2+ years working in B2C mobile apps
- 2 - 5 years of direct management experience is the sweet spot – looking for a Player-coach
- Experience in a fast paced start-up environment (VC backed, rapidly growing mobile app, etc.)
Hard skills
- Has owned product analytics at a B2C software company - conversion funnels, feature adoption, retention, user segmentation
- Updated
- Deep understanding of subscription and mobile app metrics: trial conversion, trial-to-paid modeling, LTV, renewal rates, cohort analysis
Depth with data analytics and engineering tools (SQL, dbt, BigQuery, Python, Mixpanel, Amplitude, etc.)
Experience with mobile UA attribution — MMP (AppsFlyer, Adjust, or similar), SKAN, multi-touch
Practical experience building with AI/LLM tools
Soft skills: Effective communication: when they’re asked a question, they answer it succinctly and directly.
Traits to avoid
- Heavy data engineers or data scientists
- People working on B2B SaaS products or e-commerce
- VP level and above, or anyone who needs a big team
Skills
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