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How Will You Build Your Next AI Agent?

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Manage episode 482060680 series 3535718
Content provided by Kieran Gilmurray. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Kieran Gilmurray or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://podcastplayer.com/legal.

The industrial revolution transformed manufacturing when steam engines replaced manual labor. Today, we're witnessing a similar revolution as autonomous AI agents take over business processes—answering customer emails, qualifying leads, and optimizing supply chains with minimal human oversight.

TLDR:

  • Low-code platforms like Langchain and Lama Index provide visual interfaces and pre-built components for quick implementation
  • Full-code development offers maximum control and flexibility, essential for complex, high-volume, or niche applications
  • Advanced full-code agents incorporate memory, reasoning, and action components with capabilities for reflection and planning
  • The distinction between low-code and full-code is blurring as new technologies enable code generation from natural language descriptions

These agentic AI systems occupy the fascinating space between programmed instruction and emergent intelligence. But how do you build them? The development spectrum ranges from accessible low-code platforms to sophisticated full-code solutions. Low-code environments like Langchain and no-code tools such as Zapier provide pre-built components and visual interfaces—think IKEA furniture for AI development—allowing quick deployment of functional agents. However, their templates and abstraction layers can limit customization and create dependencies on third-party services.
For organizations seeking both speed and specialization, hybrid approaches offer strategic advantages. By using low-code for routine tasks while implementing custom code for critical components, teams can quickly establish foundations while addressing specific business requirements. This isn't a compromise but rather strategic arbitrage—leveraging the efficiency of templates where appropriate and investing saved time in developing tailored logic that differentiates your business.
When off-the-shelf solutions can't provide necessary flexibility or performance, full-code development delivers maximum control. Building from scratch with Python enables finely-tuned architecture with sophisticated memory, reasoning, and action components. Advanced agents can even implement reflection for self-improvement and planning for multi-step operations. The decision between approaches depends on variables like problem complexity, technical debt tolerance, and scaling trajectory—a choice that grows more nuanced as the line between code and no-code continues to blur.
Curious how AI agents might transform your business processes? Subscribe to explore more insights on implementing intelligent automation that delivers real business results!

Read: From Low-Code to Full-Code: The Agentic AI Evolution is Here

Support the show

For more information:
🌎 Visit my website: https://KieranGilmurray.com
🔗 LinkedIn: https://www.linkedin.com/in/kierangilmurray/
🦉 X / Twitter: https://twitter.com/KieranGilmurray
📽 YouTube: https://www.youtube.com/@KieranGilmurray
📕 Buy my book 'The A-Z of Organizational Digital Transformation' - https://kierangilmurray.com/product/the-a-z-organizational-digital-transformation-digital-book/
📕 Buy my book 'The A-Z of Generative AI - A Guide to Leveraging AI for Business' - The A-Z of Generative AI – Digital Book Kieran Gilmurray

  continue reading

Chapters

1. How Will You Build Your Next AI Agent? (00:00:00)

2. Introduction to Agentic AI Architecture (00:00:01)

3. Low-Code Agent Development Explained (00:02:19)

4. Hybrid Approaches: Best of Both Worlds (00:06:56)

5. Full-Code Development for Maximum Control (00:10:49)

6. Making the Right Choice (00:16:17)

7. The Future of Agent Development (00:18:05)

103 episodes

Artwork
iconShare
 
Manage episode 482060680 series 3535718
Content provided by Kieran Gilmurray. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Kieran Gilmurray or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://podcastplayer.com/legal.

The industrial revolution transformed manufacturing when steam engines replaced manual labor. Today, we're witnessing a similar revolution as autonomous AI agents take over business processes—answering customer emails, qualifying leads, and optimizing supply chains with minimal human oversight.

TLDR:

  • Low-code platforms like Langchain and Lama Index provide visual interfaces and pre-built components for quick implementation
  • Full-code development offers maximum control and flexibility, essential for complex, high-volume, or niche applications
  • Advanced full-code agents incorporate memory, reasoning, and action components with capabilities for reflection and planning
  • The distinction between low-code and full-code is blurring as new technologies enable code generation from natural language descriptions

These agentic AI systems occupy the fascinating space between programmed instruction and emergent intelligence. But how do you build them? The development spectrum ranges from accessible low-code platforms to sophisticated full-code solutions. Low-code environments like Langchain and no-code tools such as Zapier provide pre-built components and visual interfaces—think IKEA furniture for AI development—allowing quick deployment of functional agents. However, their templates and abstraction layers can limit customization and create dependencies on third-party services.
For organizations seeking both speed and specialization, hybrid approaches offer strategic advantages. By using low-code for routine tasks while implementing custom code for critical components, teams can quickly establish foundations while addressing specific business requirements. This isn't a compromise but rather strategic arbitrage—leveraging the efficiency of templates where appropriate and investing saved time in developing tailored logic that differentiates your business.
When off-the-shelf solutions can't provide necessary flexibility or performance, full-code development delivers maximum control. Building from scratch with Python enables finely-tuned architecture with sophisticated memory, reasoning, and action components. Advanced agents can even implement reflection for self-improvement and planning for multi-step operations. The decision between approaches depends on variables like problem complexity, technical debt tolerance, and scaling trajectory—a choice that grows more nuanced as the line between code and no-code continues to blur.
Curious how AI agents might transform your business processes? Subscribe to explore more insights on implementing intelligent automation that delivers real business results!

Read: From Low-Code to Full-Code: The Agentic AI Evolution is Here

Support the show

For more information:
🌎 Visit my website: https://KieranGilmurray.com
🔗 LinkedIn: https://www.linkedin.com/in/kierangilmurray/
🦉 X / Twitter: https://twitter.com/KieranGilmurray
📽 YouTube: https://www.youtube.com/@KieranGilmurray
📕 Buy my book 'The A-Z of Organizational Digital Transformation' - https://kierangilmurray.com/product/the-a-z-organizational-digital-transformation-digital-book/
📕 Buy my book 'The A-Z of Generative AI - A Guide to Leveraging AI for Business' - The A-Z of Generative AI – Digital Book Kieran Gilmurray

  continue reading

Chapters

1. How Will You Build Your Next AI Agent? (00:00:00)

2. Introduction to Agentic AI Architecture (00:00:01)

3. Low-Code Agent Development Explained (00:02:19)

4. Hybrid Approaches: Best of Both Worlds (00:06:56)

5. Full-Code Development for Maximum Control (00:10:49)

6. Making the Right Choice (00:16:17)

7. The Future of Agent Development (00:18:05)

103 episodes

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