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X @Avi Chawla
Avi Chawla· 2025-07-24 19:14
Model Comparison - Qwen 3 Coder 与 Sonnet 4 在代码生成方面进行了比较 [1]
X @Avi Chawla
Avi Chawla· 2025-07-24 06:40
Model Comparison - The report compares Qwen 3 Coder and Sonnet 4 for code generation [1]
How agents will unlock the $500B promise of AI - Donald Hruska, Retool
AI Engineer· 2025-07-23 15:51
AI Market Growth & Trends - AI infrastructure spending has reached $0.5 trillion, yet many companies are limited to basic chatbots and code generation [2] - Anthropic's annualized revenue has grown rapidly, 3xing in 5 months, reaching $3 billion by the end of May [3] - OpenAI is projected to reach $12 billion in revenue by the end of 2025, a 3x increase from the previous year, driven by enterprise AI spending [4] - Cost per token for AI inference dropped dramatically by 99.7% from 2022 to 2024 [33] - Google searches for "AI agents" increased 11x in the last 16 months [34] Retool's Agentic AI Solution - Retool is breaking into Agentic AI with the release of Retool Agents, enabling enterprises to build agents with guardrails that integrate into production systems [2] - Retool customers have automated over 100 million hours of work, freeing up human potential [31] - Retool's cheapest agent is priced at $3 per hour [33] Agent Development Strategies - Companies have four options for agent development: building from scratch, using a framework like Lang graph, using an agent platform like Retool Agents, or using verticalized agents [16][17][18][19] - The decision to build or buy agents depends on whether it's part of the core product, involves regulated data, or is a commodity workflow needed quickly [21] - When considering a managed platform, evaluate the breadth of connectors, built-in permissioning, compliance, audit trails, and observability [22][23] Enterprise Considerations for AI Agents - Enterprises need to consider single sign-on, role-based access control, secure integration with external services, audit logs, compliance, and internationalization when deploying AI agents [13][14] - Risks of using AI-generated code in production include hallucinations, unpredictable results, security vulnerabilities, and cost overruns [15]