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How Specialized Models Drive Developer Productivity | Tabnine’s Brandon Jung

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Manage episode 441549973 series 2844204
Indhold leveret af LinearB. Alt podcastindhold inklusive episoder, grafik og podcastbeskrivelser uploades og leveres direkte af LinearB eller deres podcastplatformspartner. Hvis du mener, at nogen bruger dit ophavsretligt beskyttede værk uden din tilladelse, kan du følge processen beskrevet her https://da.player.fm/legal.

What are the limitations of general large language models, and when should you evaluate more specialized models for your team’s most important use case?

This week, Conor Bronsdon sits down with Brandon Jung, Vice President of Ecosystem at Tabnine, to explore the difference between specialized models and LLMs. Brandon highlights how specialized models outperform LLMs when it comes to specific coding tasks, and how developers can leverage tailored solutions to improve developer productivity and code quality. The conversation covers the importance of data transparency, data origination, cost implications, and regulatory considerations such as the EU's AI Act.

Whether you're a developer looking to boost your productivity or an engineering leader evaluating solutions for your team, this episode offers important context on the next wave of AI solutions
Topics:

  • 00:31 Specialized models vs. LLMs
  • 01:56 The problems with LLMs and data integrity
  • 12:34 Why AGI is further away than we think
  • 16:11 Evaluating the right models for your engineering team
  • 23:42 Is AI code secure?
  • 26:22 How to adjust to work with AI effectively 32:48 Training developers in the new AI world

Links:

OFFERS

  • Start Free Trial: Get started with LinearB's AI productivity platform for free.
  • Book a Demo: Learn how you can ship faster, improve DevEx, and lead with confidence in the AI era.

LEARN ABOUT LINEARB

  • AI Code Reviews: Automate reviews to catch bugs, security risks, and performance issues before they hit production.
  • AI & Productivity Insights: Go beyond DORA with AI-powered recommendations and dashboards to measure and improve performance.
  • AI-Powered Workflow Automations: Use AI-generated PR descriptions, smart routing, and other automations to reduce developer toil.
  • MCP Server: Interact with your engineering data using natural language to build custom reports and get answers on the fly.
  continue reading

255 episoder

Artwork
iconDel
 
Manage episode 441549973 series 2844204
Indhold leveret af LinearB. Alt podcastindhold inklusive episoder, grafik og podcastbeskrivelser uploades og leveres direkte af LinearB eller deres podcastplatformspartner. Hvis du mener, at nogen bruger dit ophavsretligt beskyttede værk uden din tilladelse, kan du følge processen beskrevet her https://da.player.fm/legal.

What are the limitations of general large language models, and when should you evaluate more specialized models for your team’s most important use case?

This week, Conor Bronsdon sits down with Brandon Jung, Vice President of Ecosystem at Tabnine, to explore the difference between specialized models and LLMs. Brandon highlights how specialized models outperform LLMs when it comes to specific coding tasks, and how developers can leverage tailored solutions to improve developer productivity and code quality. The conversation covers the importance of data transparency, data origination, cost implications, and regulatory considerations such as the EU's AI Act.

Whether you're a developer looking to boost your productivity or an engineering leader evaluating solutions for your team, this episode offers important context on the next wave of AI solutions
Topics:

  • 00:31 Specialized models vs. LLMs
  • 01:56 The problems with LLMs and data integrity
  • 12:34 Why AGI is further away than we think
  • 16:11 Evaluating the right models for your engineering team
  • 23:42 Is AI code secure?
  • 26:22 How to adjust to work with AI effectively 32:48 Training developers in the new AI world

Links:

OFFERS

  • Start Free Trial: Get started with LinearB's AI productivity platform for free.
  • Book a Demo: Learn how you can ship faster, improve DevEx, and lead with confidence in the AI era.

LEARN ABOUT LINEARB

  • AI Code Reviews: Automate reviews to catch bugs, security risks, and performance issues before they hit production.
  • AI & Productivity Insights: Go beyond DORA with AI-powered recommendations and dashboards to measure and improve performance.
  • AI-Powered Workflow Automations: Use AI-generated PR descriptions, smart routing, and other automations to reduce developer toil.
  • MCP Server: Interact with your engineering data using natural language to build custom reports and get answers on the fly.
  continue reading

255 episoder

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