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- AI-Native Software Engineering (Building with AI Agents and Spec-Driven Development)
AI-Native Software Engineering (Building with AI Agents and Spec-Driven Development)
| Expected release date is Apr 6th 2027 |
- Availability: Confirm prior to ordering
- Branding: minimum 50 pieces (add’l costs below)
- Check Freight Rates (branded products only)
Branding Options (v), Availability & Lead Times
- 1-Color Imprint: $2.00 ea.
- Promo-Page Insert: $2.50 ea. (full-color printed, single-sided page)
- Belly-Band Wrap: $2.50 ea. (full-color printed)
- Set-Up Charge: $45 per decoration
- Availability: Product availability changes daily, so please confirm your quantity is available prior to placing an order.
- Branded Products: allow 10 business days from proof approval for production. Branding options may be limited or unavailable based on product design or cover artwork.
- Unbranded Products: allow 3-5 business days for shipping. All Unbranded items receive FREE ground shipping in the US. Inquire for international shipping.
- RETURNS/CANCELLATIONS: All orders, branded or unbranded, are NON-CANCELLABLE and NON-RETURNABLE once a purchase order has been received.
Product Details
Overview
Most engineers still use AI tools ad hoc, individually, without shared standards. The result is inconsistent output, quality gaps in production, and a growing sense that the role itself is shifting faster than the profession has answers for. If you're ready to move beyond just using AI to write code, AI-Native Software Engineering by Alfonso Graziano provides the framework to work with AI systematically, across a full development lifecycle and a whole team.
Through spec-driven development, context engineering, and structured agent workflows, you'll integrate AI from design through production in ways that are repeatable and governable, with security, governance, and economic considerations built in from the start. This is not a book about becoming an AI engineer. It's about remaining an effective one when AI is everywhere.
- Master context engineering to give AI the right information at every stage
- Write precise specifications that keep humans and AI aligned in production
- Integrate coding agents across the full SDLC, from design through testing
- Configure MCP tools for consistent, repeatable results
- Build team playbooks that address governance, security, and adoption at scale









