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Small Language Models: The Public Gen AI Killer?

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Manage episode 516688902 series 3270518
Content provided by Dr. Darren Pulsipher. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Dr. Darren Pulsipher 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.

Artificial Intelligence (AI) isn't just a buzzword—it's reshaping how businesses operate. Join host Dr. Darren, a seasoned enterprise architect, alongside Lynn Comp, an expert in innovative Data Center technology trends, as they dive into the current landscape of AI and how organizations can leverage it to thrive. In this conversation, they tackle the complexities of AI benchmarks, use cases, and the future of AI enterprise architecture. ## Key Takeaways: - **Understand AI Benchmarks**: Recognize that metrics such as tokens per second don't always translate to business value; actionability matters more than speed. - **Start Small**: Experimenting with small, manageable AI projects can yield significant insights without overhauling existing infrastructure. - **Focus on Business Needs**: Tailor AI implementations to your industry’s specific use cases to enhance operational efficiency and reduce liability. - **Embrace Hybrid Architectures**: Leverage both on-premise and cloud solutions to create a robust AI framework that mitigates risks like outages and data breaches. - **Upskill Your Workforce**: Prepare your team for the AI-driven future by fostering critical thinking skills and data literacy. ## Chapters: - 00:00 Introduction and Hook - 02:30 AI Benchmarks: Understanding the Metrics - 05:15 Use Cases for AI in Business - 08:00 The Importance of Starting Small - 10:45 The Role of Hybrid Architectures - 14:30 Upskilling Your Workforce for AI - 17:00 Recommendations and Next Steps - 19:00 Conclusion and Call to Action Join us in this enlightening episode that encourages technologists and business leaders to embrace change and harness the potential of AI in their operations. Don't forget to subscribe for more insights and share this episode with others looking to thrive in the digital age!


Unlocking the Future of Business Efficiency


AI has swiftly evolved from a concept into a powerful tool that can reshape how enterprises function. In today's rapidly changing technological landscape, understanding the role of AI, particularly in the form of small language models, is crucial for technologists and business leaders. By leveraging these innovations, organizations can harness their data more effectively, enhance decision-making, and optimize workflows.


Darren, a seasoned expert in enterprise architecture, guides listeners through this exploration. His insights resonate with those seeking to make sense of AI's rapid advancements and implement them effectively within their operations.


Navigating the AI Landscape


AI's proliferation has led to many benchmarks, such as tokens per second, that often bewilder business leaders. While these metrics are vital for tech professionals, they don't always translate to tangible business value. Thus, one of the first steps for organizations is distinguishing between gaming metrics and those that affect real-world operations.


Many organizations struggle to connect performance benchmarks to their specific business needs. For instance, the speed of AI responses can have significant implications. Higher speeds equate to better service quality, reducing response times that could affect customer satisfaction.


Key takeaways:


- Understand how AI metrics relate to human interactions.


- Identify mission-critical use cases where fast responses improve business outcomes.


Real-World Applications


Organizations boasting heterogeneous computing can utilize their existing infrastructures in novel ways. Using small language models for tasks such as data summarization or customer support can drive efficiency and effectiveness at a lower cost than previous methods.


A practical example includes enhancing customer service through AI-driven chatbots capable of summarizing support calls and providing timely answers. This not only speeds up response times but also helps staff focus on more complex issues.


Experimenting with Use Cases


To begin implementing AI, organizations should start small. Testing various use cases allows firms to gather insights without overhauling existing systems completely. The focus should be on tasks that require quick data processing or summarization — allowing teams to see immediate benefits.


Securing business data and ensuring it is integrated into traditional systems will be vital for gaining value. AI technologies should not be functioning in silos but rather enhancing existing infrastructure.


Key strategies:


- Start with basic, low-risk use cases to build confidence.


- Utilize existing data architectures to avoid creating silos.


Moving Forward with Confidence


Understanding the demand for innovative AI solutions can propel organizations forward. Business leaders should not shy away from investing in AI, even if it involves careful experimentation. As enterprise architecture transforms, so too should team skill sets, ensuring employees are equipped to harness these technologies effectively.


Simple actions such as evaluating current capabilities and employing small language models can lead to significant operational advantages. Taking the steps to embrace AI will position businesses at the forefront of their industries.


It's time to explore this exciting frontier. Dive deeper into AI's transformative impact by tuning into the full discussion in our latest episode. Unlock new possibilities for your organization today!


  continue reading

296 episodes

Artwork
iconShare
 
Manage episode 516688902 series 3270518
Content provided by Dr. Darren Pulsipher. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Dr. Darren Pulsipher 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.

Artificial Intelligence (AI) isn't just a buzzword—it's reshaping how businesses operate. Join host Dr. Darren, a seasoned enterprise architect, alongside Lynn Comp, an expert in innovative Data Center technology trends, as they dive into the current landscape of AI and how organizations can leverage it to thrive. In this conversation, they tackle the complexities of AI benchmarks, use cases, and the future of AI enterprise architecture. ## Key Takeaways: - **Understand AI Benchmarks**: Recognize that metrics such as tokens per second don't always translate to business value; actionability matters more than speed. - **Start Small**: Experimenting with small, manageable AI projects can yield significant insights without overhauling existing infrastructure. - **Focus on Business Needs**: Tailor AI implementations to your industry’s specific use cases to enhance operational efficiency and reduce liability. - **Embrace Hybrid Architectures**: Leverage both on-premise and cloud solutions to create a robust AI framework that mitigates risks like outages and data breaches. - **Upskill Your Workforce**: Prepare your team for the AI-driven future by fostering critical thinking skills and data literacy. ## Chapters: - 00:00 Introduction and Hook - 02:30 AI Benchmarks: Understanding the Metrics - 05:15 Use Cases for AI in Business - 08:00 The Importance of Starting Small - 10:45 The Role of Hybrid Architectures - 14:30 Upskilling Your Workforce for AI - 17:00 Recommendations and Next Steps - 19:00 Conclusion and Call to Action Join us in this enlightening episode that encourages technologists and business leaders to embrace change and harness the potential of AI in their operations. Don't forget to subscribe for more insights and share this episode with others looking to thrive in the digital age!


Unlocking the Future of Business Efficiency


AI has swiftly evolved from a concept into a powerful tool that can reshape how enterprises function. In today's rapidly changing technological landscape, understanding the role of AI, particularly in the form of small language models, is crucial for technologists and business leaders. By leveraging these innovations, organizations can harness their data more effectively, enhance decision-making, and optimize workflows.


Darren, a seasoned expert in enterprise architecture, guides listeners through this exploration. His insights resonate with those seeking to make sense of AI's rapid advancements and implement them effectively within their operations.


Navigating the AI Landscape


AI's proliferation has led to many benchmarks, such as tokens per second, that often bewilder business leaders. While these metrics are vital for tech professionals, they don't always translate to tangible business value. Thus, one of the first steps for organizations is distinguishing between gaming metrics and those that affect real-world operations.


Many organizations struggle to connect performance benchmarks to their specific business needs. For instance, the speed of AI responses can have significant implications. Higher speeds equate to better service quality, reducing response times that could affect customer satisfaction.


Key takeaways:


- Understand how AI metrics relate to human interactions.


- Identify mission-critical use cases where fast responses improve business outcomes.


Real-World Applications


Organizations boasting heterogeneous computing can utilize their existing infrastructures in novel ways. Using small language models for tasks such as data summarization or customer support can drive efficiency and effectiveness at a lower cost than previous methods.


A practical example includes enhancing customer service through AI-driven chatbots capable of summarizing support calls and providing timely answers. This not only speeds up response times but also helps staff focus on more complex issues.


Experimenting with Use Cases


To begin implementing AI, organizations should start small. Testing various use cases allows firms to gather insights without overhauling existing systems completely. The focus should be on tasks that require quick data processing or summarization — allowing teams to see immediate benefits.


Securing business data and ensuring it is integrated into traditional systems will be vital for gaining value. AI technologies should not be functioning in silos but rather enhancing existing infrastructure.


Key strategies:


- Start with basic, low-risk use cases to build confidence.


- Utilize existing data architectures to avoid creating silos.


Moving Forward with Confidence


Understanding the demand for innovative AI solutions can propel organizations forward. Business leaders should not shy away from investing in AI, even if it involves careful experimentation. As enterprise architecture transforms, so too should team skill sets, ensuring employees are equipped to harness these technologies effectively.


Simple actions such as evaluating current capabilities and employing small language models can lead to significant operational advantages. Taking the steps to embrace AI will position businesses at the forefront of their industries.


It's time to explore this exciting frontier. Dive deeper into AI's transformative impact by tuning into the full discussion in our latest episode. Unlock new possibilities for your organization today!


  continue reading

296 episodes

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