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Join Harvey AI as a Support Operations Data Analyst to own analytics for User Operations and drive data-driven decision-making.

Location
Remote
Compensation
$112k–$168k/yr
Level
mid
Type
full time

Posted by employer 3 months ago

First seen on Joblaze 3 months ago

Last verified on the company career page 10 hours ago

AI in the day-to-day

AI tooling is used actively in analytical workflows as a force multiplier.

Requirements

Experience
3–5 years

Not disclosed in this posting: work arrangement, visa sponsorship.

Joblaze summary

In the role of Support Operations Data Analyst at Harvey AI, the individual will be responsible for managing the analytics function within User Operations, focusing on building dashboards and reports that track key performance metrics. Proficiency in SQL and experience with support platforms like Zendesk are essential, along with strong data storytelling skills to convey insights effectively. This position is ideal for someone with 3-5 years of analytics experience, particularly in support operations, who thrives in a fast-paced, independent work environment.

Joblaze insights

  • Listed about 3 months ago — first seen on Joblaze June 16, 2026. Last confirmed on Harvey AI's careers page October 7, 2026.
  • This exact title is also open at 2 other locations at Harvey AI: San Francisco, New York.
  • Salary band is below the typical range for Data Science roles (median ~$174,500).
  • Starts above 40% of 43 comparable mid data science roles that list SQL we track (median $120,000 across 23 companies). See SQL salary trends
  • SQL appears in 69% of 155 comparable mid data science roles; Zendesk appears in 1.3% of 155 comparable mid data science roles.

Quick facts

What's the salary range?
Harvey AI lists $112,000–$168,000 for this role.
How much experience is required?
3–5 years of relevant experience for this CX Data Analyst role.
What's the tech stack?
Joblaze extracted these technologies from the posting: Looker, Omni, Python, SQL, Sigma, Tableau.
What seniority level is this role?
Harvey AI targets mid-level candidates for this position.
Is this full-time or contract?
Full-time for this CX Data Analyst role at Harvey AI.

From the original posting

Role Overview

Customer Experience runs on data — but right now, that data lives in too many places, speaks too many languages, and reaches the wrong people too late. This role exists to fix that.

As Harvey's first Support Operations Data Analyst, you'll own the analytics function for the Customer Experience org. You'll build and maintain the dashboards, reports, and feedback loops that tell us whether we're hitting our north stars — cSAT, TTR, QA scores, escalation rates — and surface the signal underneath the numbers so we can act on it. You'll sit within the Support Operations team, reporting to the Support Operations Manager, and work closely with Customer Experience leadership and Harvey's central data team to ensure the org is equipped with the right instrumentation as we scale.

This is a solo role. You won't have a team beneath you. You will need to be fluent enough in support analytics to hold the function independently, confident enough to push back on how metrics are framed, and fast enough to operate at Harvey's pace.

 

What You'll Do

  • Own recurring reporting for Customer Experience — weekly, monthly, and QBR-ready — tailored to ops, leadership, and cross-functional audiences

  • Translate support data into clear narratives: what's happening, why, and what to do about it

  • Track and maintain north star metrics: cSAT, TTR by tier, QA scores, bug escalation rate to EPD, and First Response Time

  • Build and maintain self-serve dashboards that give the ops team and leadership real-time visibility into support performance

  • Partner with Support Systems to ensure Zendesk is instrumented to capture the data we need

  • Work with Harvey's central data team to connect support data to broader product and customer data sources

  • Identify and close data collection gaps — if we can't measure it, help define how we should

  • Design feedback loops that connect support signals to Product, Engineering, and Customer Success

  • Quantify the operational cost of product bugs, feature gaps, and onboarding failures

  • Contribute to QA analytics as the QA program matures

  • Track ticket deflection, AI/chatbot performance, and self-service effectiveness

  • Measure the impact of AI-driven support — containment rate, escalation rate from AI interactions, resolution quality — and surface findings that drive how we tune and invest in those tools

  • Support ad hoc analytical requests from the Support Operations Manager, Customer Experience leadership, and senior stakeholders

 

What You Have

Required

  • 3–5 years of experience in analytics, with at least 2 years directly in support operations, customer success operations, or a closely adjacent function

  • Fluency in support platform data — you know how Zendesk (or equivalent) is structured, what data it produces, and what it doesn't

  • SQL proficiency — you can write complex queries against large datasets without hand-holding (CTEs, window functions, joins across schemas)

  • Dashboard experience — you've built and maintained operational dashboards in Looker, Tableau, Sigma, Omni, or equivalent

  • Reporting for multiple audiences — you know the difference between what a frontline manager needs and what a CFO needs, and you build accordingly

  • Strong data storytelling — you don't just present numbers, you write the narrative

  • Comfort operating solo — you don't need a team around you to deliver, and you don't need a ticket to tell you what to look at

Strong Plus

  • Experience with Python for data manipulation or automation

  • Familiarity with dbt or similar data transformation tooling

  • Experience building or contributing to QA analytics programs

  • Background supporting enterprise SaaS or AI-native products

  • Experience working with Zendesk APIs or extracting data beyond standard reporting

Key Attributes

  • AI-native: you use AI tooling actively in your analytical workflows — not as a novelty, but as a force multiplier

  • Pace: you move in hours and days, not weeks. You surface findings before anyone has to ask

  • Judgment: you know which metrics matter and which are vanity. You push back when framing is wrong

  • Clarity: your outputs are direct, jargon-free, and actionable. You write for the reader, not yourself

  • Ownership: you treat Customer Experience analytics as your problem to solve, not a ticket queue to process

 

Compensation

$112,000 - $168,000 USD

 

#LI-ML1

Standard company text repeated across Harvey AI's postings is omitted here.

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