Category

Personalization Software

Software that changes what a website, email or product page shows depending on who's looking at it, used by marketing and ecommerce teams to lift conversion and retention.

3 businesses

Unless

Amsterdam, Netherlands

Most AI for customer experience does too little or too much. Helpdesk chatbots cap out at ticket deflection, while autonomous…

4.5 5 reviews

Wylei

Jersey City, New Jersey, United States

Wylei is a venture backed next generation artificial intelligence cloud-based machine learning company that uses advanced…

4.5 1 reviews

XGen Ai

New York, New York, United States

We’re transforming ecommerce teams into AI experts. Our mission is to empower ecommerce teams to rapidly, deploy and implement AI…

4.2

These vendors sell tools that change what a visitor sees based on who they are, what they've done before, or what company they work for. In practice that means swapping out a homepage banner for a returning customer, showing different product recommendations to a first-time visitor versus a repeat buyer, recognising a known B2B account and surfacing content relevant to their industry, or triggering a different email based on browsing history rather than sending the same campaign to everyone. The work is integrating with your site, app, CRM or product catalogue, defining the rules or models that decide what to show, and then running the experiments that prove it's working.

People start looking for this when a site or app is getting decent traffic but converting badly, and the usual response — more traffic, a redesign, another email campaign — hasn't moved the number. Often the marketing team is manually building audience segments in spreadsheets, or the same welcome message goes out to a repeat customer and a stranger. In B2B, it's the sales or marketing team wanting to know which companies are on the site right now and tailor the experience accordingly, rather than treating every visitor as anonymous. In ecommerce, it's usually cart abandonment, flat repeat-purchase rates, or a recommendation widget that just shows the same bestsellers to everyone.

The tools split mainly on where they act and how they decide what to show. Some work purely on-site — dynamic content blocks, product recommendations, pop-ups — while others reach into email, ads or chat. Some rely on rules you set (if visitor is from this segment, show that), others use machine learning to predict what will convert and adjust automatically, which trades transparency for performance. A few specialise in B2B firmographic personalization — identifying the company behind a visit — while most are built for B2C behavioural data. Worth comparing on: how deep the integration with your existing data (CDP, CRM, product catalogue) needs to go, whether a marketer can run it without engineering help, whether A/B testing and attribution are built in or bolted on, and how pricing scales with traffic — since that's where costs on high-volume sites can climb fast.

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