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What Is Conversational AI?

What Is Conversational AI?

Conversational artificial intelligence (AI) encompasses technologies like chatbots and virtual agents that engage users in conversation. These systems leverage vast amounts of data, machine learning, and natural language processing to simulate human-like interactions, allowing them to comprehend and interpret speech and text inputs, as well as translate meanings in multiple languages. Unlike traditional software that relies on fixed commands, conversational AI is designed to understand and respond to a wide array of human conversations, whether through voice or text. This advanced capability enables it to recognize diverse speech patterns and text variations, effectively mimicking human communication. Many organizations implement conversational AI for customer support, enabling the software to offer tailored responses to user inquiries.

 

Read: Top 10 Trends Of Customer Experience: Why CX is the Cornerstone of FinTech Success?

How to Implement a Conversational AI Strategy?

  1. Establish Your Goals and Use Case Define clear objectives for your conversational AI initiative, such as automating customer experiences or reducing employee service requests. Specific goals help identify the right technology for your needs, like using AI to free up support agents for more complex inquiries.
  2. Use Data to Determine What to Automate Analyze data to identify high-volume, repetitive tasks that are prime candidates for automation.
  3. Get Support from Stakeholders Gain buy-in from stakeholders by aligning your proposal with business objectives. Emphasize how conversational AI will enhance customer understanding and agent satisfaction and provide measurable ROI.
  4. Determine Your Budget and Resources Evaluate your budget and resources to decide between no-code solutions for quick implementation or more complex software requiring a larger investment.
  5. Consider Your Existing Infrastructure Select a conversational AI tool that integrates easily with your current customer support systems and can operate across multiple digital channels for seamless customer interaction.
  6. Choose the Right Software Look for conversational AI software pre-trained on real customer interactions, like Zendesk AI. Confirm implementation timelines and integration capabilities with your existing systems.
  7. Measure Performance with Data Collect data and customer feedback to assess the effectiveness of your conversational AI. Use QA tools to monitor interactions and deploy CSAT surveys to gather insights for continuous improvement.
A woman walks up steps alongside seven conversational AI strategy steps.
Source:Zendesk

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Case Studies of Top Brands Using Conversational AI

 

Bank of America – Erica, Your Virtual Financial Assistant

Bank of America uses a virtual assistant called Erica to provide customers with personalized financial advice and support. Erica uses conversational AI to help customers with tasks such as checking account balances, paying bills, setting up savings goals, and even providing financial insights.

The AI assistant can also answer questions about recent transactions or help users locate nearby ATMs and branches. Erica’s capabilities extend beyond basic tasks, as it can proactively suggest ways to manage finances and alert users to potential issues.

Statistics:

  • By 2023, Bank of America had over 15 million active users of its Erica virtual assistant.
  • More than 50 million interactions occurred through Erica, showcasing the high level of engagement and user satisfaction.

H&M – Personalized Shopping Experience with Chatbots

H&M, a global fashion retailer, implemented a chatbot on its website and mobile app to assist customers with personalized fashion recommendations. The chatbot, called Ada, uses conversational AI to ask customers about their fashion preferences, such as color, size, and style, and recommends outfits based on their answers.

Ada’s conversational approach enables a more personalized shopping experience, helping H&M’s customers find clothes that suit their tastes without having to browse through thousands of products manually.

Statistics:

  • H&M experienced a 30% increase in engagement and customer retention due to its personalized chatbot experience.
  • The chatbot reduced the need for human customer service agents, cutting operational costs by 20%.

 

Lufthansa – Virtual Assistant for Travel Support

Lufthansa, a major German airline, offers a virtual assistant called Mildred. The chatbot helps passengers with flight bookings, check-ins, baggage inquiries, and flight status updates. Passengers can interact with the virtual assistant through their smartphones or the Lufthansa website.

Mildred provides instant support, reducing the need for customers to wait for a human agent. By using conversational AI, Lufthansa is able to improve operational efficiency and provide quicker responses to customer queries.

Statistics:

  • Lufthansa reported a 50% reduction in the number of inquiries to human agents after launching the chatbot.
  • The chatbot handles over 1 million requests per month, improving customer service scalability.

 

The future of customer service builds on AI to deliver engaging experiences and generate lasting value.

FAQ

What is the difference between chatbots and conversational AI?

The main difference between chatbots and conversational AI is conversational AI can recognize speech and text inputs and engage in human-like conversations. Chatbots are conversational AI, but their ability to be “conversational” varies depending on how they’re programmed. As mentioned earlier, conversational AI is a broader category encompassing all AI-driven communication technology.

What is the difference between conversational AI and generative AI?

Conversational AI focuses on simulating human-like conversations through interactive dialogue, while generative AI creates new content, such as text, images, or music, based on patterns learned from data. Generative AI can enhance conversational AI. For example, a generative AI bot could find an answer to a customer’s question in your knowledge base and respond with a summary of the article—that hasn’t been pre-scripted.

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