Studio · AI Agent · Solo Company

AI Agent / Solo Company Build

Hand your repetitive work to AI employees

Custom AI Agent systems for solopreneurs, freelancers, and small teams. We delegate customer service, marketing, admin, research, writing, and follow-ups to agents — turning you into a 'one-person company with AI employees'.

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Best fit if you...
  • Solopreneur / creator / freelancer wanting to use AI leverage instead of hiring
  • Founder short on hands, looking to fill admin / CS / marketing gaps with AI
  • Using ChatGPT for chat only, not yet automating real workflows
  • Want to build your own AI assistants / advisors
  • Want agents that handle research, decks, writing, email, follow-ups
What you'll get
  1. 01/ Agent architecture design (single vs multi-agent orchestration)
  2. 02/ Tool integration (LLM API, knowledge base, vector DB)
  3. 03/ Automation glue (n8n / Make + agent triggers)
  4. 04/ Monitoring and cost controls (token usage, output quality)
  5. 05/ Documentation, walkthrough videos, 30-day post-launch consulting
AI Agent / Solo Company Build service overview
Why work with me
  • I combine engineering execution with business-process design — I know what should and shouldn't be automated
  • I run my own consulting, site, and content distribution through AI agents — a working solo-AI-company in practice
  • Beyond delivery, I teach you how to 'manage your AI employees': adjust prompts, evaluate output, iterate
AI Agent / Solo Company Build delivery flow
Tech stack

LangChain, LangGraph, CrewAI, OpenAI Assistants API, Claude API, Anthropic Computer Use, n8n, Pinecone, Vercel

Price range

NT$15,000–150,000+

Engagement flow

30-min discovery call → scope and pricing → phased delivery → launch handoff

6 Agent archetypes

Customer Service Agent — connects to LINE / web chat / email; auto-triage, FAQ handling, escalates to human when needed.

Marketing Agent — from one topic, fans out SEO articles, social posts, ad copy across multiple platforms.

Sales Agent — lead nurturing, pitch drafts, customer follow-up emails, automated CRM updates.

Research Agent — given a topic, crawls data, synthesizes, produces industry reports.

Internal Assistant Agent — meeting notes, calendar management, email triage, to-do sync.

Content Production Agent — one source (a long-form article, a podcast) → automatically produces shorts, threads, newsletter, social image cards.

Why this stack (LangGraph + n8n + vector DB)

LLM APIs are stateless — each conversation, the model doesn’t remember what happened before. Real Agents need:

  1. State management (LangGraph or OpenAI Assistants) — Agent remembers the goal and decision history across multi-step flows.
  2. Knowledge layer (Pinecone / vector DB) — your private docs (past projects, SOP, customer data) become real-time-queryable context.
  3. Action layer (n8n / Make) — once the Agent decides what to do, it actually sends the email, writes to Notion, pushes the LINE message.
  4. Monitoring layer — token usage, output quality, anomaly alerts.

Skip any layer and the Agent degenerates into “ChatGPT that talks a bit better”.

How I run my own AI company

The Luce Agentic engagement flow, content distribution, and customer follow-up all run on Agents — not a demo, the production system I rely on every day. So what I deliver isn’t a “working PoC” — it’s a “system I’d run myself”, complete with prompt-tuning guides and cost-control dashboard.

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