AI Electronics Engineering

From idea
to PCB.

Turn an electronics idea into a validated schematic, production-oriented PCB and interactive 3D design.

See how it works ↓

Hardware shouldn't start
with a blank schematic.

Tell RoxForge what you're building.

Creates a new workspace every time — never reuses an old design.

  1. Prompt
  2. Architecture
  3. Schematic
  4. PCB
  5. 3D

One description.
An entire electronics design.

RoxForge generates requirements, architecture, components, schematic wiring, PCB placement and routing, validation and a KiCad-compatible export — from a single product brief.

roxforge — workspace
Fitted board outline · clustered placement · copper routes

How RoxForge works

A structured electronics pipeline — not a black-box image generator.

01

Understand

RoxForge analyzes the product requirements from your natural-language description.

02

Architect

Selects appropriate components and system architecture for the product.

03

Connect

Creates electrical connectivity, nets and an interactive schematic.

04

Route

Places components and routes copper with net-class and layout awareness.

05

Validate

Runs ERC / DRC and signal-integrity oriented checks before manufacturing gates.

06

Manufacture

Exports a KiCad-compatible project you can continue refining in your toolchain.

Not a picture of a PCB.
A PCB.

RoxForge generates structured electronics designs that can be validated, inspected and exported — real components, footprints, nets, routing and board geometry.

  • Real components & footprints
  • Real nets & pin mapping
  • Board outline & layers
  • ERC / DRC checks

Manufacturing readiness is gated by validation — we only mark a design ready when checks pass.

See the hardware
before you build it.

Inspect board outline, layers, routing and component placement in an interactive 3D view inside the workspace — rotate, examine and verify before export.

  • XYZ inspection
  • Front / back orientation
  • Copper layers & routing
  • Component models where available

Engineering intelligence,
not just generation.

An engineering copilot for hardware — not a replacement for engineers. RoxForge reasons about connectivity, placement and routing constraints as it builds.

Component compatibility
Pin mapping
Power requirements
Signal integrity awareness
EMI / noise zones
Routing priorities
Return path / ground planes
RF antenna keepouts
Board-edge connectors
Manufacturing clearance

Good electronics
is more than connectivity.

Common failure modes

  • Spaghetti routing
  • Oversized unused board area
  • Unnecessary vias & congestion
  • Poor functional placement
  • Noise-sensitive paths ignored

RoxForge goals

  • Clustered, role-aware placement
  • Board outline fitted to geometry
  • Net-class & EMI-aware routing
  • Multilayer stackup when needed
  • ERC / DRC gated manufacturing state

Design beyond
two dimensions.

Dense designs can use multilayer stackups with dedicated ground and power distribution — supporting return paths and cleaner signal routing.

L1

Signal + components

L2

GND plane

L3

Power / signals

L4

Signals

Your design.
Your tools.

Export your RoxForge design to a KiCad project and continue engineering with the toolchain you already trust.

Explore KiCad export

Built for real hardware

Smart devices

Wearables, smart speakers and connected IoT products.

Robotics

Motor controllers, sensors and compact robotic subsystems.

Embedded systems

ESP32, STM32 and MCU-centered product designs.

Prototyping

Rapid hardware iteration and proof-of-concept boards.

Case study

Built with RoxForge.

RoxLab Home

Smart speaker architecture with ESP32-S3, INMP441, MAX98357A and Li-ion power — progressing from prompt through architecture, schematic, multilayer PCB and 3D inspection.

ESP32-S3INMP441MAX98357ALi-ion power4-layer PCB
  1. Prompt
  2. Architecture
  3. Schematic
  4. PCB
  5. 3D

Your next piece of hardware
starts with a sentence.

Describe what you want to build.

Explore RoxForge