
Plurio is hiring specialists who have already relocated from Russia and Belarus.
plurio · На сервисе с: 03.07.26 18:41
Plurio is hiring specialists who have already relocated from Russia and Belarus.
Plurio is the AI agent for media buying teams running $300K–$15M/month on Google, TikTok and others). It connects to your internal backend data and your ad accounts, automates analysis and optimization, saves 50% of time, and boosts ROAS by 10–30%. Watch a five-minute demo.
Plurio transforms how media buying teams work:
Our agents already run $500M+/year in ad spend (see this inside a $20M+/year UA team). Since our public release in March, our customer base has grown 4× in 10–12 weeks.
Our goal — and the mission we'd build together — is the autonomous user acquisition factory that runs 10× better than anything that came before, growing budgets under management to $30B/year.
We build AI that does performance-marketing work. To do that, the AI — and the humans steering it — need a rock-solid analytical foundation: clean attribution, end-to-end funnel visibility, and a real understanding of how money actually moves across Google, and the rest of the stack.
That foundation is what this role owns. You're the person who can look at messy cross-channel data and say not "CTR dropped" but "here's why the unit economics don't work and what to do about it." You understand attribution from the inside — first touch vs. last touch, multi-touch paths, custom windows, LTV-driven optimization for funnels where the purchase doesn't happen on day one.
But we're not hiring a classic analyst who lives in spreadsheets. Industry analysts spend 60–70% of their time preparing data and only the rest analyzing it. We invert that. You'll use AI agents (Claude Code, Cursor, Codex) to build the workflows, queries, and automations that kill the grunt work — so your time goes to judgment, not janitorial data prep. You write SQL like a native language, and you teach an AI agent to write it for you and check its work.
If owning marketing analytics + attribution and building AI-driven analytical workflows sounds like your kind of problem — read on.
Marketing attribution & measurement
Own how we model attribution and measure performance across channels — first/last/multi-touch, custom windows, cross-channel paths, LTV-driven logic for complex funnels. Make the numbers trustworthy and explainable.
Cross-channel & funnel analysis
Connect paid media, on-site behavior, CRM, and backend revenue into one end-to-end view. Diagnose where the funnel leaks and why the unit economics do or don't work — at a business level, not just a metrics level.
Paid-channel analytics (Google and others)
Read these platforms like an operator: how the auction behaves, where spend hides, why CPA spikes, what the data is really telling you. Turn that into reallocation and optimization decisions.
AI-driven analytical workflows
Build the workflows, queries, and automations that do the heavy lifting — using AI agents (Claude Code, Cursor, Codex) to generate, refactor, and validate SQL and analysis. Design repeatable pipelines, not one-off pulls. You're as much a workflow builder as an analyst.
Dashboards & insight delivery
Build clear, accessible dashboards and reporting (Power BI / Looker / Tableau-class) that make insight usable by the team and clients. Pair real-time anomaly detection with sane evaluation windows (7–14 days) so decisions are signal, not noise.
Working with the product
Your analytical models and attribution logic feed the AI agent itself. Partner with product, data, and engineering on what "correct" looks like — so the product reasons about marketing the way a great analyst would.
Requirements:
It'd Be a Plus If
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