MACHINE LEARNING IN MARKETING AND SALES
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INTRODUCTION
WHY THERE IS A NEED FOR ML-BASED MARKETING AND SALES?
Presently, deploying ML is considered essential for gleaning data and reaping its full potential to enhance the bottom line.
In the last 10 years, there’s no field where ML has been more consistently applied than in digital marketing. That’s because, compared to other industries, internet companies:
There are several benefits ML-based marketing and sales strategies, providing companies a significant boost into their businesses, include:
Improved marketing qualified leads (MQLs*); More sales qualified leads (SQLs**); Better insights to position marketing strategies; Boost in competitive advantages; Relevant target audience; Smart Point-of-Sale system; Highly precise marketing campaigns; Improved profits and sales; Enhanced customer satisfaction with improved user experience.
HOW ML HELPS IN MARKETING AND SALES?
Marketers use machine learning to monitor customer behavior. They write algorithms to track:
- websites visited
- emails opened
- downloads
- clicks
A consumer’s social score is a factor as well. It monitors and analyzes how a user behaves on social networks, e.g.:
- accounts they follow
- posts they like
- ads they engage with
Using machine learning to qualify prospects is helping businesses create more accurate customer profiles, improving their marketing.
EASY TO PREDICT CUSTOMER CHURN
Customer churn is also known as customer turnover. It measures the number of customers who ended their relationship with a business. For a business, it occurs when a customer cancels its service or unsubscribes from its membership.Churn rates are calculated by the percentage of customers or subscribers who leave a business within a specified period of time. For a company to grow, the number of new customers must be higher than the churn rate.You need to know what your churn rate is to know how satisfied your customers are with your product or service. And you also need to be able to predict your churn rate so you can minimize it.

Examples of behaviors that get monitored include how customers engage with a product or mobile app.When was the last time they signed into their profile? When was their last purchase?For example, let’s say one customer visits your website twice per month. On the first visit, they research products, and on the second visit, they buy something.This pattern goes on for a year. But after a year, the customer visits your site only once per month and doesn’t buy anything. You could predict they’ll stop using your business altogether soon.Machine learning helps analyze this data on a much larger scale.The technology gives marketers information to predict the churn so that it can be prevented. Now these brands can do something to make sure they don’t lose the customer before it’s too late.
PROFITABLE DYNAMIC PRICING STRATEGY
A dynamic pricing strategy allows businesses to offer flexible prices for the products and services they offer.It’s a common model in hospitality, travel, and entertainment industries. With machine learning and AI, the dynamic pricing strategy is penetrating the retail industry as well.Basically, this strategy helps you segment prices based on customer choices.Dynamic pricing is also related to real-time pricing, which is when the value of goods is based on certain market conditions.Purchasing an airline ticket is a great example of this. The price of the ticket depends on how far in advance you purchase it, the number of tickets already purchased, and the location of the seat.
SENTIMENT ANALYSIS
AI technology can analyze text to determine whether the sentiment there is positive or negative.Sentiment analysis is being used by marketers to better understand their online reputation.Computers read through social media comments and alert the marketers to negative content. The company can then address the problem raised.AI can also identify people happy with your products to help you find social influencers and brand ambassadors.You can use machine learning to help you read the emotions of consumers online.
PRIORITIZE AD TARGETING AND CUSTOMER PERSONALIZATION
AI and machine learning are helping marketers target their ads more effectively.Right now, your ads might be great, but they can’t be effective if they aren’t being seen by the right audiences. With the help of AI, you can make sure your target audience is reached.In addition to improving the way your ads get targeted, machine learning can help personalize the customer experience on your platforms.Algorithms can predict which type of content would be the most popular with each unique visitor. You and I could both visit the same website and see different content.
COMPUTER VISION FOR PRODUCT RECOGNITION
Machine learning for computer vision helps brands recognize their products in images and videos online. The algorithm looked for images without any relevant text to find posts related to the brand. It also tracked information about competing brands and influencers.

As you can see, machine learning helped a company find over 1 million posts associated with the brand. It would be nearly impossible for a human to complete this task.
RELEVANT RECOMMENDATIONS SYSTEMS
Machine learning helps marketers discover which types of products consumers want based on their browsing histories and shopping behaviors. Relevant product suggestions increase conversions.Machine learning can identify your preferences as well and probably even better than the people who know you best.These recommendations improve the customer experience.
CHATBOTS
Live chat has a 92% customer satisfaction rating. Studies show 63% of customers are more likely to return to a website if it offers a live chat feature. We can provide better custoner service using live chat features. A Chatbot can catch your audience's attention and learn from the interaction, allowing it to send relevant information regarding your brand, products, and services. Essentially, it's able to up-sell and cross-sell in a personalized, conversational, and engaging way.As a result, this will improve targeting and product recommendations. Basically, machine learning helps chatbots further personalize the customer experience. Chatbots keep your customers on pages for longer and also decrease the wait times for customers waiting to connect with customer service representatives.
PREDICTING CUSTOMER LIFETIME VALUE
IMPORTANCE OF ML IN MARKETING AND SALES
APPLICATIONS OF MACHINE LEARNING (ML) IN MARKETING AND SALES
Machine learning increases sales team productivity. Specifically, data-based alarms and insights save the sales manager and his sales team valuable time. AI and machine learning significantly reduce manual analyses and unsuccessful customer visits, and sales campaigns lead to more closed sales
SOME MACHINE LEARNING BASED MARKETING AND SALES MODELS ARE LISTED BELOW
1.Effective risk prediction and interventions
2.Efficient predictive data modeling
3.Real-time content help through chat bots and other tools
4.Segmentation and Targeting
5. Customer Churn
6. Customer Life Time Value
7. Recommendation Engines
All of the above models powered by different types of algorithms help marketers to increase the targeted customer outreach, improve the relevance of their audience, trigger a response or action, and create a great user experience.
POPULAR TOOLS FOR ML/AI BASED MARKETING
There is an end number of AI-based marketing tools and they are increasing day by day. A large number of commercial and native applications, tools and platforms are developing frequently in the marketplace. The following are some of the popular ones:
AgileOne
Oracle BlueKai
Motiva AI
Ascend
Adobe audience manager
Automated Insights
Salesforce Einstein
Albert
CloudSight
SOME GREAT EXAMPLES OF BIG COMPANIES THAT ARE USING AI AND ML MARKETING
- Amazon uses AI and ML for its online store.
- Netflix uses the predictive analysis tool for better content curation.
- Google, for website ranking.
- Pinterest uses them for its recommendation algorithms and content detection for better user experience.
- Walmart uses machine learning based software for anticipating customer needs and providing suitable solutions for them.
HOW TOP BRANDS USE ML TO ENHANCE THEIR SALES
BENEFITS OF USING ML IN MARKETING AND SALES
The demand for machine learning developers across all kinds of companies and businesses is rapidly increasing. This soaring demand has also increased the machine learning developer salary substantially in the marketplace.
- Increasing sales and profitability
- Provides 360 degrees customer view
- Improved personalized marketing
- Substantial reduction in customer churn
- Quick solutions to marketing problems
- Fast and accurate sales projections and forecasts
- Improved marketing qualified leads (MQLs*)
- Increased sales qualified leads (SQLs**)
- Reducing the overall marketing cost
According to the QuanticMind survey, more than 97%of the industry experts believe that the future of the digital marketing will be fully influenced by machine learning techniques and AI-based marketing automation. The artificial intelligence and machine learning-based smart automation is going to be the future of digital marketing.
The marking and sales impact on modern businesses due to machine learning in action is amazingly high. According to the Capgemini consulting report, more than 75% of companies boosted sales by more than 10% by implementing these methods in their marketing strategies.
We can foresee the future of marketing and sales across industries are closely driven by artificial intelligence and machine learning. Even, a large number of big corporations are already taking benefits of it and several small and mid-sized businesses are making their road towards it.
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