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Principal Applied AI Engineer

ByLabs

On-siteSan Francisco, CAleadPosted 2h ago

Job description

About the Role

We are hiring a Senior Applied AI Engineer for a leading fintech company's AI Team to serve as the team's technical anchor in the United States.

You will lead two primary streams:

  • AI Coding tooling and developer experience โ€” bringing the engineering depth of Silicon Valley front-line teams (Claude Code, Cursor, Devin, Replit Agent, etc.) into Bybit.

  • AI application paradigm exploration and dogfooding โ€” building small, frontier prototypes in internal scenarios that validate streaming UX, transparent agent steps, long-context memory, and other emerging patterns, and propagating them across the team through reference code, blog posts, and workshops.

This role is about craft and taste

. You are not a platform architect, nor a BU project delivery engineer. You are the person who turns front-line Silicon Valley product engineering experience into multiplicative leverage for the entire AI Team.

Responsibilities

  • Introduce AI Coding tooling best practices โ€” Bring the engineering depth of Claude Code, Cursor, Devin, Replit Agent, and similar tools (Skills, hooks, subagents, long-context engineering, MCP integration) into Bybit. Produce engineer onboarding playbooks and advanced-usage standards.

  • Set the bar for the Skill Marketplace โ€” Define Skill design conventions; personally deliver 5โ€“10 reference-quality Skills as exemplars; raise team-wide Skill engineering quality through PR review.

  • Prototype an AI-native engineering workflow โ€” Reimagine the spec โ†’ design โ†’ implementation โ†’ review โ†’ testing โ†’ release โ†’ operations lifecycle around AI tools, producing a reference workflow APAC teams can adopt.

  • Build internal AI application prototypes (employee-facing scenarios) โ€” In OpenClaw, A2UI, role-bound AI assistants, and similar internal contexts, build small frontier prototypes that validate streaming UX, transparent agent steps, long-context memory, multi-agent collaboration, and other emerging patterns.

  • Provide reference architecture code โ€” When APAC teams face hard architectural choices in new AI scenarios, deliver runnable "this is how Silicon Valley does it" reference implementations โ€” not documents, but working code.

  • Cross-team craft propagation โ€” One internal tech talk per month, one in-depth blog per quarter, and one onsite workshop in APAC per half year. Distill Silicon Valley AI application best practices into durable team assets.

  • Architecture review participation โ€” As the AI Team's anchor in the U.S., participate in Bybit's AI architecture review process and provide frontier perspective and taste-based feedback at the application layer.

Requirements

  • Education: Top-tier CS / EE BS or above; MS preferred.

  • 6+ years of software engineering experience, including at least 2 years focused on LLM applications.

  • Senior AI application engineering experience: Has shipped AI applications from 0 โ†’ 1 in production (not demos). Must have at least one tour of duty as a core engineer at a top-tier Silicon Valley AI company or a leading AI product team โ€” examples include Anthropic, OpenAI, Meta, and similar.

  • Deep AI Coding tooling fluency: Claude Code, Cursor, Devin, or Replit Agent (at least one) is a daily-driver in your workflow, and you can articulate its engineering implementation. Strong understanding of the engineering tradeoffs in Skills, hooks, subagents, MCP, and long-context engineering.

  • Agent application engineering depth: Solid grasp of ReAct, Plan-Execute, Reflection, Multi-Agent, and Orchestrator-Worker tradeoffs. Hands-on experience with LangGraph, AutoGen, CrewAI, OpenAI Swarm, or in-house frameworks.

  • Strong full-stack engineering: Strong backend (Go / Python / TypeScript). Mid-level or above frontend (React / Next.js). Comfortable with end-to-end streaming rendering and interaction.

  • Strong product sense and craft: Comfortable collaborating with PMs and designers; you have considered opinions and taste on AI application UX patterns (streaming, undo, context surfacing, agent-step progress, etc.).

  • Public technical influence: A track record of public output โ€” blog, talks, OSS contributions โ€” sufficient to represent the team's craft externally.

  • Self-direction and async collaboration: Capable of independently judging value priorities and driving prototype-to-dogfooding loops; effective at collaborating with APAC counterparts via documents, PRs, and asynchronous communication.

Nice to have

  • Open-source contributions to LangChain, LlamaIndex, AutoGen, CrewAI, Vercel AI SDK, Claude Code MCP, OpenTelemetry GenAI, or similar projects.

  • Track record of translating research output (papers, blog posts) into production application patterns.

  • SaaS B2B product 0 โ†’ 1 experience.

  • Experience productizing multilingual (English / Chinese) applications.

  • AI experience in the financial or crypto domain.