19/11/2024 | News release | Distributed by Public on 19/11/2024 13:21
Updated: November 19, 2024
Published: October 31, 2024
As an entrepreneur, I'm always looking for more tools and strategies to both run my business more efficiently and boost my revenue. Given that I'm a one-woman team, I'm constantly exploring AI tools that can help me run my business better.
One use case I've found particularly interesting is how I can use AI to improve my customer journey - which essentially ensures that I'm delivering value to potential customers at various points of their buying journey. To learn more about the areas of opportunity, I spoke with some experts in this space and also demoed a few innovative tools.
In this article, I'll walk you through everything I've learned about AI and customer journey mapping. You'll see how you can use machine learning to process large amounts of customer data, uncover hidden patterns, and predict future behaviors with uncanny accuracy. And whether you're a solopreneur like me or leading a fast-growing tech startup, you'll find learnings and tips you can apply to your business.
Note: You'll see references to both Claude and ChatGPT throughout the article. I tested both throughout the writing process - and you can apply the prompts to whichever tool you prefer.
Table of Contents
AI is transforming the way businesses understand and map their customers' journeys. By leveraging machine learning algorithms and big data analytics, AI can process vast amounts of customer data to identify patterns, predict behaviors, and uncover insights that might be missed by human analysis alone.
For example, a traditional customer journey map visualizes how customers move from awareness to acquisition, and ideally, to becoming loyal customers. AI enhances this process by:
To understand how valuable AI can be, you should be familiar with the pain points (pun intended!) of the journey mapping process. Two of the biggest ones are the time it takes to build out and the vast amount of data needed to process. (Think about all the customer touchpoints you might have as an ecommerce startup, for example.)
A traditional customer journey map could take you days or even weeks to finish, according to a Nielsen Norman Group survey. And that's not including all the time it takes to collect and synthesize customer feedback.
The process is time-consuming due to several factors. Data collection from various sources like website analytics, social media, customer service logs, and sales data can be lengthy. Analyzing this data to identify patterns and insights is often a manual, time-intensive task. Collecting insights from different departments and conducting customer interviews or surveys adds to the timeline. Lastly, it takes significant effort and skill to create a visually appealing and easy-to-understand map.
Here are some other use cases for AI in the customer journey mapping process, according the experts I spoke with:
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Given that AI is still a relatively new technology, we are still learning a lot about its limitations. I always recommend trying any new AI tool with a healthy dose of skepticism. (After all, I'm a journalist at heart!)
Erik Karofsky, CEO of VectorHX, has used AI to develop journey maps and feels it's not quite ready for prime time yet.
A big challenge with creating a journey map using AI is that "it doesn't serve any user well," he says. "AI can produce overly complex maps cluttered with unnecessary information or may generate overly simplistic, generic maps that fail to provide valuable insights. These journey maps frequently require extensive revision, and during this process, gaps in the journey become apparent."
However, where AI can be useful (with some caveats) is in providing insights that contribute to a better journey or influence the journey itself (though a UX professional is still essential to the creation process), he explains.
Here are some real-life examples he shared with me to illustrate:
That being said, let's explore how you can create a customer journey map with AI - with a focus on using it as a partner in the process instead of an overall replacement.
This is where the fun begins. My biggest pro tip when incorporating AI into any aspect of your business is to take the time just to experiment without putting pressure on the outcome. Try different tools and prompts to see what's possible.
Take a look below to see an example of how one tool, Journey AI, helps synthesize customer data and create a personalized journey in a matter of seconds.
Don't worry, we'll get to the tools shortly. But before we get there, let's cover the basics. Here are the first steps you should take to create a customer journey map with the help of AI.
You'll want to begin by clearly outlining what you want to achieve with your customer journey map. For example you could focus on any of the following:
According to a study by Gartner, companies that prioritize and effectively manage customer journeys are twice as likely to significantly outperform their competitors in revenue growth. This underscores the importance of setting clear objectives for your journey mapping process.
As I walked through these steps for my own business, I really wanted to find opportunities to increase conversions among my potential customers. This helped me keep a narrow focus as I built out a customer journey map.
If you're at a larger organization, John Suarez, director of client services at SmartBug Media, first recommends interviewing marketing/sales/customer service to understand their customer and ideal journey. From there, you can be laser-focused on gathering the specific data you need.
How to implement AI at this stage: Test out different ChatGPT prompts to uncover your objectives and find ways to narrow down your customer journey map. Here's an example prompt below I tried with Claude.
First, gather all relevant customer data from various touchpoints. This will depend on your specific business, of course, but it can include:
For my business, my main two touchpoints for potential customers are my business website and my social media profile. From there, I'm able to pull reports using tools like Google Analytics to learn more about my website visitors. I can learn more about what links they click on and where they drop off in the user journey.
If you're a startup or small organization, gathering customer data is crucial but can be challenging due to limited resources and a potentially small initial customer base. A lean approach might involve leveraging a combination of free and low-cost tools to collect data across various touchpoints.
How to implement AI at this stage: Once you've gathered all of the data you'll need, you can dump it into Claude or ChatGPT and try something like the prompt below. By asking specific questions in your prompt, you can tailor the responses and data analysis to your needs.
In the era of big data, consolidating information from various sources into a unified, actionable dataset is a major challenge for businesses of all sizes. But this is an important step creating accurate and comprehensive customer journey maps - so you'll want to get it right.
A survey by Forrester found that 80% of companies struggle with data silos, which can lead to incomplete or inaccurate customer journey maps. Thankfully, AI-powered data integration tools can help overcome this challenge by automatically consolidating data from multiple sources.
Apply machine learning algorithms to your integrated dataset. These algorithms can identify patterns, segment customers, and highlight key touchpoints in the customer journey.
Here is an example prompt you can try, just make sure to tweak your own data points.
There are also more advanced tools you can use - especially if you're a developed business with a massive quantity of data to analyze.
Next in your process, you can use natural language processing (NLP) to analyze customer feedback and communications. This helps in understanding customer emotions and sentiments at different stages of their journey.
For example, you can use AI to analyze the sentiment of customer feedback, categorize feedback into themes, discern customer intentions, and predict future customer behaviors. All of these tasks can give you invaluable learnings about the customer journey.
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Use AI visualization tools to create a dynamic, data-driven representation of the customer journey. This visual map should highlight key touchpoints, pain points, and opportunities.
Pro tip: Suarez recommends using a tool like Whimsical Diagrams' Custom GPT for Flow Mapping at this stage. I was fascinated with how quickly this tool created a simple customer journey map flow chart.
As with any AI tool, you'll want to approach it with a hefty amount of skepticism and validate your findings with human expertise. Even in this process, I sometimes had ChatGPT recommend studies that simply didn't exist.
While that's especially not ideal for writing an article - it can be harmful if you're relying on this to build your business and boost your bottom line. By combining the AI-driven insight with feedback from your customer-facing teams and actual customers, you'll get the highest quality output possible.
Pro tip: If you want help getting started with your own customer journey map, check out our templates here.
Don't forget that the customer journey continues post-purchase. Check out our Post-Sale Playbook for more insights and strategies.
To see how I could use AI to learn about customer journey mapping, I first turned to ChatGPT to brainstorm some helpful prompts. I think of this step of the process as tapping into a research assistant where I'm simply experimenting ways to improve the customer journey process.
You can see an example prompt and ChatGPT response here:
Here are some top prompts I've discovered that can save you a ton of time:
Pro tip: When using AI, remember your outputs will only be as good as your inputs. The more details you can give about your business, your objectives, your data points, etc., the more tailored your responses will be.
To learn how to build a customer journey map with AI, I wanted to try it out myself.
Here's a simple prompt that I tested out. Keep in mind that I added some background information about what services I offer, who my customers are, etc., so that I would get a more tailored response.
The response? I was able to turn the initial results into a simple chart with the help of Claude. You'll see that it covers touchpoints, client actions, opportunities, and metrics at each stage of my buyer's journey. Not a bad start if you ask me!
Touchpoints |
Client Actions |
Opportunities |
Metrics |
|
Awareness |
Website, social media, referrals |
Discovering your services, initial research |
Improve SEO, create valuable content, enhance social media presence |
Website traffic, social media engagement |
Consideration |
Portfolio, testimonials, blog posts |
Comparing services, reading reviews |
Showcase diverse writing samples, highlight client success stories |
Time on site, portfolio views |
Interest |
Contact form, email, phone call |
Reaching out for more information |
Quick response time, clear communication of services and process |
Inquiry rate, response time |
Evaluation |
Proposal, follow-up emails, consultation call |
Reviewing proposal, asking questions, considering options |
Personalized proposals, addressing common concerns proactively |
Proposal acceptance rate, time to decision |
Decision |
Contract, payment process |
Signing contract, making initial payment |
Streamline contract process, offer multiple payment options |
Conversion rate, time from proposal to contract |
Onboarding |
Welcome email, project kickoff call |
Providing project details, setting expectations |
Smooth onboarding process, clear communication of next steps |
Client satisfaction score, project start time |
To take it one step further, I took this data and added it to a Whimsical Diagrams GPT to create a visual chart. There were still some kinks to work out with the prompting, but I eventually got to a basic version that I'm pleased with.
Going through this process, I discovered that I had two problems (read: areas of improvement) on my hands. The first is that I lacked a lot of customer data that I needed to input into the AI - so this was a good nudge for me to find better ways to monitor my customers' journey. The metrics column here offers a great starting point for KPIs I can track - and ideally improve.
I also found that there was a pretty big gap for buyers at the consideration stage. I don't always make it clear why they should hire me compared to my competitors. Luckily, this chart is actionable for me. I'm able to focus on creating more diverse writing samples and client success stories - and will be tracking this through my site metrics.
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Of course there are so many incredible AI tools on the market that go beyond ChatGPT. If you're serious about incorporating more AI into your process, I highly recommend checking these out. Again I tested each of these out for my own business to see first-hand what the experience is like as a user.
You might already be familiar with the AI tool Taskade. It offers a ton of helpful work management features, like managing tasks and team collaboration. But I found their User Journey Map Generator (powered by AI) to be a really helpful tool in both brainstorming and visualizing the customer journey map.
Key features:
Pro tip: Taskade's AI can help generate journey maps based on your input, making it an excellent starting point for beginners new to journey mapping (aka me!). What I really liked is that you can use their AI agent at various points of the process, which will help you research specific bullet points, develop an outline, and even spell check.
Twilio Segment is a powerful customer data platform that can help make your journey mapping a breeze. While not exclusively a journey mapping tool, it has strong capabilities for data collection and analysis that can help you create a more detailed customer journey.
For example, you can visualize the journey a specific customer might take who hasn't purchased from you in three months but has visited your site in the past month. Without using AI, think how much time you could spend trying to track, identify, and tell a story from these data points.
Key features:
Pro tip: This also helps CX teams increase their personalization - which is a top priority according to our State of Customer Service report.
Although last on this list of tools, Journey AI is one of the most fascinating tools I discovered during my research process. Created by TheyDo, Journey AI instantly converts customer research into journey maps packed with actionable insights - and saves you hours worth of manual work.
For example, you can input your text-based research (think everything from sticky notes to surveys) to create a customer journey map tailored with customer feedback.
Key features:
As I was researching and reviewing these AI tools, what I found most fascinating is all the ways you could personalize and improve customer journey maps with the click of a few buttons (plus some trial and error). Keep in mind that what works for a B2B SaaS company is not the same thing that is necessary for me as a solopreneur and freelancer. However, I was able to tweak my prompts and inputs throughout to tailor it for my specific business and needs.
And if you can apply the same lessons, the outcome is powerful. AI can help transform a task that is arduous, time-consuming, and complex into one that is streamlined, driven by data, and easy-to-understand. This empowers me on my business journey to focus more on what I do best - while also ensuring that I keep a steady stream of happy customers. (A win-win!)
Of course this is a great place to remind you that AI is not a magic solution. It's a powerful tool that works best when combined with human insight and expertise. As I continue to test new tools, I'm excited to see how AI will further help me to improve my customer journey and build my business.
Unlock essential strategies for exceeding customer expectations and driving business growth in a competitive market.
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