Category

Customer Data Platforms (CDP)

For companies whose customer data is scattered across systems and teams, a guide to the platforms that unify it into one usable profile for marketing and service.

37 businesses

BambooBox

Wilmington, Delaware, United States

At bamboobox, we deliver intelligent ABM as a fully managed, tech-powered service. What sets us apart is our ability to implement…

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Blotout

Fremont, California, United States

Blotout is first-party data infrastructure for performance marketers - built to rebuild signal, govern data, and activate AI…

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Bridg CDP

Los Angeles, California, United States

Bridg, a division of cardlytics, inc., is a different type of identity resolution platform that converts transactions into…

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Castled Data

San Francisco, California, United States

Castled.io is a customer engagement platform (cep) that brings the power of data in the warehouse to the marketer. Essentially…

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Growhold

Dover, Delaware, United States

Transform ideas into structured results with growhold. AI-powered launchpads provide helpful knowledge, clear steps, and…

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GrowthLoop

Chicago, Illinois, United States

Growthloop is a compound marketing engine that drives compound growth by accelerating the marketing cycle, using agentic AI…

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ONEcount

Coral Springs, Florida, United States

Onecount is a customer data platform coupled with a robust marketing tech stack (mts). The highly integrated platform is ideal…

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ProEdge

New York, New York, United States

At pwc, we help clients drive their companies to the leading edge. We’re a tech-forward, people-empowered network with more than…

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Reach

Scottsdale, Arizona, United States

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Retina.ai

Santa Monica, California, United States

We are your clv experts. Retina is the customer intelligence partner that empowers businesses to maximize customer-level…

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Transitiv

Farmers Branch, Texas, United States

Collaborative analytics and data infrastructure for franchises. Begin your data journey with transitiv. 🏆 inc 5000 🚀 top 5…

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Treasure Data

Mountain View, California, United States

Treasure AI is the agentic experience platform built for modern marketing teams. Formerly treasure data, we've spent 15 years…

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Vertex AI Agent Builder

Mountain View, California, United States

A problem isn't truly solved until it's solved for all. Googlers build products that help create opportunities for everyone…

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These vendors are hired to take customer data that's scattered across a CRM, an ecommerce platform, email tool, app analytics, point-of-sale system and ad accounts, and turn it into one profile per customer that other systems can actually use. The concrete work is identity resolution (matching an anonymous website visitor to an email subscriber to a paying customer), building pipelines that pull data in from those sources continuously, and pushing unified segments back out to the tools that run campaigns — ad platforms, email and SMS senders, personalization engines, call centre software. Once it's working, a marketer can build a segment like 'lapsed high-value customers who opened the last email but didn't click' without filing a ticket with engineering.

People end up looking for this when the customer picture inside their company has fractured. The same person gets emailed as a prospect after they've already bought. Support has no idea what the customer looked at online before they called. Marketing wants to run a win-back campaign but the data needed to define it sits in three databases nobody can join cleanly, so building the list takes weeks and by the time it's ready the moment has passed. Often there's also a compliance angle: consent and preference data living in yet another system, making it hard to prove who opted out of what.

The providers here split roughly into two camps. One group sells a packaged CDP with its own data store, built-in identity resolution, and marketing features layered on top — segmentation, journey building, sometimes predictive scoring for churn or lifetime value. The other group is closer to reverse-ETL: they assume your data already lives in a warehouse and their job is just to sync it out to activation tools, leaving the modelling to you. That split drives most of the real trade-offs: owning your own warehouse gives more control and avoids duplicating data, but means more engineering work; a packaged CDP gets marketers self-sufficient faster but locks more of your customer data inside the vendor. Beyond that, compare them on how identity resolution actually works (deterministic matching on logged-in IDs versus probabilistic matching across devices), whether they're built for high-volume consumer behavioural data or smaller B2B account-based data, how real-time the activation is, and what's genuinely built-in versus what needs a consultant or integration partner to make work.

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