Hellyeah AI
AI Engineer — Learn Engine: Intelligence & Optimization
San Francisco HQ · Shanghai
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hirly's read of this role
- Seniority
- Mid level
- Stated salary
- $200,000 – $1,000,000 per year
- Countries
- US, CN
- Work mode
- On-site / unstated
- First seen by hirly
- 28 Sept 2026
Derived automatically from the posting. Upload your resume above to see how the role scores against it.
the posting
Build the brain of an autonomous growth OS. The system you create will manage millions in ad spend and get measurably smarter with every dollar. This is the moat — every competitor has humans optimizing campaigns manually. You are building the intelligence layer that compounds. The Platform engineer creates the tools, you create the decisions. Together you build something nobody else has.
- Must Have:
- Has built recommendation, optimization, or decision systems where outputs improve future inputs.
Strong statistical reasoning and experimentation judgment under noisy real-world data.
Strong LLM orchestration or agent-system experience for reasoning over campaign context.
Can design optimization policies, scoring systems, or automated recommendation loops.
AI-first development workflow and ability to ship production systems quickly.
- Nice to Have:
- Ad-tech optimization patterns (bid management, budget allocation, ROAS optimization)
Reinforcement learning (RL) experience is a plus
Hyperparameter optimization (HPO) experience is a plus
Model fine-tuning experience is a plus
Experience building agent-driven automation (LLM agents that take actions)
Background in growth engineering, performance marketing, or data science
Experience with Mastra or similar agent orchestration framework
- Own the intelligence and optimization layer of Learn Engine.
- Build recommendation engines for bid changes, budget reallocation, pause/boost decisions, and postback optimization.
- Turn SSOT campaign data into high-quality optimization guidance and closed-loop decision systems.
- Define how the system learns from outcomes and continuously improves campaign strategy over time.
- This role owns decision quality, optimization policy, and learning loops — not platform plumbing or simulator infrastructure.
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