The Essential Artificial Intelligence Glossary for Marketers (90+ Terms)


AI has transformed the business landscape, and while everyone can benefit from it, not everyone has the technological background to understand exactly how it works and what it does.

This piece is an AI glossary of all the essential terms and definitions you need to know to fully understand the technology you use.

Free Report: The State of Artificial Intelligence in 2023

Table of Contents

Why Artificial Intelligence Matters for Marketers

Artificial intelligence is important for marketers because it can support crucial parts of the marketing process, like SEO research, campaign personalization, data analysis, and content creation. For example, a tool like Campaign Assistant uses text inputs (also called prompts) to help marketers seamlessly and quickly create copy for landing pages, emails, and ad campaigns.

Landing Page without prompt-1Get Started With Campaign Assistant

And, when AI assists with key marketing tasks, it also saves you time that you can redistribute to focusing on optimizing your campaigns.

Read through the AI glossary below to learn more about how the AI tools you use work.

Artificial Intelligence Terms Marketers Need to Know

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  • Chatbot – A chatbot simulates human conversations online by answering common questions or routing people to the right resources to solve their needs.
  • ChatGPT – ChatGPT is a conversational AI that runs on GPT, a language model that uses natural language processing to understand text prompts, answer questions or generate content.
  • Cognitive Science – Cognitive science studies the mind and its processes. Artificial intelligence is an application of cognitive science that applies systems of the mind (like neural networks) to machine models.
  • Composite AI – Composite AI combines different AI technologies and techniques and makes them work together to solve problems and handle complex tasks.
  • Computer vision – Computer vision is deep learning models analyzing, interpreting, and understanding visual information, namely images and videos. Reverse image search is an example of computer vision.
  • Conversational AI – Conversational AI is technology that mimics a human conversational style and can have logical and accurate conversations. It uses natural language processing (NLP) and natural language generation (NLG) to gather context and respond in a relevant way.

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  • Generative AI – Generative AI processes prompts by identifying patterns and using those patterns to produce an output that aligns with its initial learning, like an answer to a question, text, images, audio, video, code, and even synthetic data.
  • General Intelligence – General intelligence is the second of the three stages of AI. See Artificial General Intelligence (AGI).
  • GPT – Generative Pre-trained Transformer (GPT) is OpenAI’s language model that is trained on large amounts of data and, from its training, can understand natural language inputs to answer questions, have human-like conversations, and produce content. GPT-4 is the latest and most advanced iteration of GPT.

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  • Machine Learning – Machine learning is a type of artificial intelligence where machines use data and algorithms to make decisions and predictions and complete tasks. Machine learning systems get better and more accurate over time as it has new experiences and data to learn from.
  • Midjourney – Midjourney is a generative AI model that can produce new images from natural language prompts.

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  • Virtual reality (VR) – VR is any software that immerses users in a three-dimensional, interactive virtual environment using a sensory device.

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