Product Analyst
DoiT International · Netherlands
Skills in this posting
The posting
Location
Our Product Operations Analyst - Product Analytics will be an integral part of our Global Product Management team.
This role is based remotely in the East US, the UK, Ireland, Sweden, the Netherlands, Estonia and Israel.
Who We Are
DoiT is a global technology company that works with cloud-driven organizations to leverage the cloud to drive business growth and innovation. We combine data, technology, and human expertise to ensure our customers operate in a well-architected and scalable state - from planning to production.
Delivering DoiT Cloud Intelligence, the only solution that integrates advanced technology with human intelligence, we help our customers solve complex multicloud problems and drive efficiency.
With decades of multicloud experience, we have specializations in Kubernetes, GenAI, CloudOps, and more. An award-winning strategic partner of AWS, Google Cloud, and Microsoft Azure, we work alongside more than 4,000 customers worldwide.
The Opportunity
We’re hiring a Product Operations Analyst to strengthen how R&D decisions are made at DoiT and to help drive our AI transformation across the organization.
This role is built for someone who cares deeply about business results, not just the data itself. You care about the customers we serve and use AI tools, data, and voice of the customer systems as tools to improve how we discover, define, build, mature, and iterate our products.
You’ll operate at the intersection of product, data, AI, and customer insight helping build and maintain the measurement and analytics foundations that ensure our product investments are grounded in reliable signals and real customer needs.
Reporting to the Head of Product Operations and part of the Product and R&D organization, this is a high-impact individual contributor role suited for someone with strong data, analytics, and AI experience who enjoys building scalable processes and working cross-functionally.
As DoiT’s product portfolio grows, clear measurement and structured customer insight become increasingly important. This role helps ensure that product decisions are informed, measurable, and aligned with business outcomes, enabling the team to build with greater confidence and focus.
Responsibilities
1) Product Measurement & Instrumentation
Support and evolve the framework and systems that turn product behavior into trusted, actionable signals:
Partner with Engineering to define and maintain event taxonomy, tracking standards, and instrumentation quality
Build and maintain scalable, self-service dashboards for product teams
Help establish and document clear metric definitions as a shared source of truth.
Contribute to improving how and what we measure as the product evolves.
Leverage AI to repeatedly unlock insights and recommendations from these signals
Outcome: Product teams have reliable data to evaluate performance and make informed decisions.
2) Analytics & Data Foundations
Strengthen the product analytics ecosystem and data models that power decision-making.
Work within our product analytics stack (e.g., Mixpanel, Segment, Looker) to ensure accurate and accessible reporting.
Build and maintain dbt models for core product entities and behaviors.
Contribute to a clean, usable metric layer for business stakeholders.
Help structure and analyze Voice of the Customer inputs (e.g., support, churn, NPS, sales feedback, customer interviews)
Support data quality through testing, monitoring, documentation, and automation
Deploy the best AI tooling available to make our data a differentiator
Outcome: Product data is systematically consistent, accessible, and trusted.
3) Insight Generation & Reporting
Translate product usage and customer signals into clear, actionable insights.
Deliver recurring product analytics reporting (adoption, engagement, retention)
Contribute to analytics readouts to business stakeholders and executives with clear findings and recommendations
Perform analyses that connect product behavior to revenue and retention outcomes
Support automated reporting and AI-assisted workflows while maintaining metric integrity
Strive to make insights and reporting automated and self-service, heavily assisted through best practices with emerging AI techniques
Outcome: Product and business stakeholders regularly use analytics and customer insights to inform roadmap and investment decisions.
Qualifications
5+ years of experience in product analytics or related roles. Experience working closely with digital product teams and influencing decisions through data.
AI-First mentality. Must have a practical understanding of how AI is reshaping analytics workflows. The ideal candidate will have experience using AI to accelerate insight generation, documentation, and distribution while understanding how to build guardrails, trust, and safe operationalization of AI.
Systems thinker & operator's mindset. Track record of building systems that scale across many groups.
A “Builder” mindset . We have bold ambition, and we move fast. Whether we’re missing processes, systems, tools, data, or buy-in, your instinct must be to create, solve, and build paths that may not exist today.
Comfort operating in ambiguity. Ability to prioritize, structure problems, and execute independently while collaborating across teams.
Clear communicator. Experience presenting analysis to product managers and business stakeholders, translating complex findings into actionable recommendations. Strong analytical foundation. Advanced SQL required.
Experience with event-based analytics and familiarity with tools such as Mixpanel (or similar), Looker (or similar BI tools), Segment (or similar), and dbt. Domain familiarity (preferred). Exposure to public cloud environments (AWS, GCP, Azure), FinOps/cloud cost management, and enterprise SaaS company concepts is preferred.
How success will be measured
Product teams rely on analytics to evaluate feature performance and guide roadmap decisions
Core product metrics are clearly defined, trusted, and consistently used
Product insights contribute to improvements in adoption, engagement, and retention
Voice of the Customer signals are organized and incorporated into feedback loops
Data is readily accessible, well-documented, and clear, enabling efficient decision-making
Analytics and insights are available quickly and require less manual effort
AI is being used across our product operating model to incorporate signals into every decision across Product, Design, and Engineering
AI-driven insights are systematically integrated to inform and optimize critical decision-making throughout every phase of our product lifecycle, from initial concept to post-launch iteration.
Are you a Do’er?
Be your truest self. Work on your terms. Make a difference.
We are home to a global team of incredible talent who work remotely and have the flexibility to have a schedule that balances your work and home life. We embrace and support leveling up your skills professionally and personally.
What does being a Do’er mean? We’re all about being entrepreneurial, pursuing knowledge, and having fun! Click here to learn more about our core values.
The PivotHop read
- What a product analyst actually earnsmedian, seniority, by country
- Alternative careers for a product analystevery measured route out
- Data Analyst → Product Analyst66% readiness
- BI Developer → Product Analyst59% readiness
- AI Product Manager → Product Analyst50% readiness
- All open product analyst rolesthe full board
Where these skills also reach
- 530 open data analyst roles52% readiness from product analyst
- 600 open business analyst roles39% readiness from product analyst
- 424 open management consultant roles32% readiness from product analyst
- 600 open qa engineer roles21% readiness from product analyst
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