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The Rise of AI Agents: Transforming DAM and Content Operations in 2025

Agentic AI vs Generative AI

The Rapid Evolution of AI: Why It Matters for DAM and Content Operations

2025: The Year of AI Agents

What are AI Agents?

How are AI Agents Different from Generative AI?

Key Differences between Generative AI and Agentic AI

Agents Will Lead to Greater Trust in AI

How Can AI Agents Improve DAM & Content Operations?

AI Agents will Reduce Metadata Creation Time in the DAM

AI Agent Metadata

An example of what an AI Metadata agent can do: A Metadata agent can help automatically populate many more metadata fields for content such as descriptive or even dropdown fields using generative AI capabilities. It can populate metadata and organize files based on a company’s proprietary metadata model and directions provided by the DAM team. For example, if an apparel business’s agency drops a bunch of new product images, the AI agent can be trained to automatically fill out fields like brand name, product category, primary color, and even organize the relevant brands in a “Fall 2025” collection. This reduces the time a content contributor would normally spend performing all of these tasks manually. With the AI agent, assets become ready for use and search as soon as they are uploaded into the DAM.

AI Agents will Reduce Asset Search Time in the DAM

AI Agent Search

AI Agents will Ensure Foolproof Brand Compliance in DAM Assets

AI Agent Annotation

AI Agents can Improve Customer Conversions via Marketing Personalization

AI Agent Personalization

Can I Extend DAM AI Agents to Work with Other Systems?

Conclusion

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