Predictive Marketing: The Next Must-Have Technology for CMOs

Predictive Marketing: The Next Must-Have Technology for CMOs. The more data-driven marketing becomes, the easier it is for CMOs to attribute closed deals directly to their marketing programs. These models are created by data scientists and software that use machine learning algorithms to produce the most accurate predictions as possible to aid businesses in their decision-making. Top uses of predictive analytics for marketing include: Defining your ideal customer profile and identifying prospects that match Providing a common framework for decision-making between sales and marketing Creating personalized content, offers, and campaigns for high-value customer segments Increasing conversion rates, closed deals, and deal size Deciding to use predictive analytics is the first step, but effectiveness varies from vendor to vendor. Look for Integrations With Popular Marketing Apps Predictive marketing tools find relationships between the behavior and traits of your customers and those of your prospects. The real value lies in finding a predictive platform with open architecture — one that integrates with your applications for things like CRM, marketing automation, or business intelligence (BI) and uses them to make accurate and actionable predictions. When sales buys in to predictive analytics, both teams can adapt their behavior around the new insights and launch cohesive, high-conversion campaigns. Do those customers look like you? Are they using the platform in a way that is relevant to your business? In a truly data-driven approach like this, the success of your business is directly bound to the technology you adopt.

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You can use predictive analytics to identify promising prospects, build hyper-targeted segments and personalize outreach at scale.

The more data-driven marketing becomes, the easier it is for CMOs to attribute closed deals directly to their marketing programs.

But with so much information available they encounter a new challenge: knowing which tactics and strategies to prioritize when each bad decision can cost thousands in missed opportunities.

Predictive analytics is surging in popularity among marketing leaders. It combines several components of artificial intelligence (AI) to predict which prospects are most likely to become customers.

This technology eliminates a great deal of manual and redundant work from marketing and sales analytics, letting reps spend more time on high-value outreach and lowering chances that a calculation error will cost the company important deals.

You can use predictive analytics to identify your most promising prospects, build hyper-targeted segments, and personalize outreach at scale—often resulting in significantly increased conversion rates on inbound and outbound campaigns.

But not all predictive technology is equal. As more companies adopt it for marketing, the competitive edge shifts from whether you’re using it to how.

What Predictive and AI Can Do for Your Marketing Team

Predictive analytics lets you take large sets of data and mine them for actionable insights using specific types of AI. These models are created by data scientists and software that use machine learning algorithms to produce the most accurate predictions as possible to aid businesses in their decision-making.

Top uses of predictive analytics for marketing include:

  • Defining your ideal customer profile and identifying prospects that match
  • Providing a common framework for decision-making between sales and marketing
  • Creating personalized content, offers, and campaigns for high-value customer segments
  • Increasing conversion rates, closed deals, and deal size

Deciding to use predictive analytics is the first step, but effectiveness varies from vendor to vendor. Be prepared to do some comparison shopping before you find the best fit.

Choosing the Right Marketing Technology

Once you are sold on the idea of predictive for sales and marketing, you still need to navigate the market and pick the best option for your organization. These tips will help you make the right choice:

1. Look for Integrations…

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