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Salary
$150k – $280k per year
Location
In office (San Francisco)
Seniority
Staff
Employment
Full-Time
Overview
Company
Impact
Profile match
Fuku is a fast-casual restaurant concept founded by chef David Chang that specializes in Asian- and Southern-inspired spicy fried chicken. Originating from a secret menu item at Momofuku Noodle Bar in New York, the brand has grown into a standalone culinary concept known for its signature chicken sandos, tenders, and sides. Today, Fuku operates through brick-and-mortar locations, major sports arenas, airports, and high-traffic venues across the United States.

Member of Technical Staff (Backend)

San Francisco, CA

Compensation: $150,000 - $280,000 + Competitive Equity

Type: Full-Time

Visa Sponsorship: H-1B, O-1, OPT

Priority: High (Hiring Multiple)

About the Company

Client is automating compliance for banks and fintechs using AI agents that function like human analysts within browsers. The company is experiencing rapid growth and is expanding its engineering team to accelerate development and meet an ambitious 6-month roadmap. Client’s AI agents automate AML, KYC, KYB, and transaction monitoring, targeting a $50B+ market currently dominated by manual compliance labor. The company is led by founders with a track record of building and selling successful AI and ML systems.

Key company highlights:

- Has never lost an RFP to a competitor.

- Used across the U.S., Canada, Europe, and LatAm.

- Delivers 90% less manual work and 4× lower costs to customers.

- Run by founders who previously sold an AI company and built ML systems used by millions.

- Operates in a high-velocity, customer-focused, no-nonsense environment.

About the Role - Member of Technical Staff (Backend)

As a backend engineer, you will build and maintain the backend and ML systems powering Client's AI agents. These systems navigate the web, interpret unstructured data, detect global financial risk, and make sub-second compliance decisions. The role covers backend engineering, distributed systems, ML pipelines, and agent workflows. You will own features end-to-end and ship production systems used by banks.

This role is ideal for engineers seeking:

- High technical scope

- Challenging problems with real-world impact

- Minimal meetings

- A small team with high autonomy

- Opportunities to push the frontier of AI agents in production environments

Key Technical Challenges

1. Browser Agents for the Invisible Web

- Build AI agents that interact with legacy government portals and financial systems using:

- Computer vision

- DOM reasoning

- Robust error handling at scale

2. Global Risk Graph

- Develop a unified intelligence layer connecting people, companies, and risk signals across jurisdictions and languages.

3. Decisions at the Speed of Money

- Build infrastructure that processes millions of transactions on AWS, including:

- Distributed inference

- Caching

- Queue orchestration

- Self-healing data pipelines

4. Deep Research Without Hallucinations

- Develop deep research pipelines to ensure LLMs do not confuse similar entities, providing accurate compliance decisions beyond the capabilities of generic models like ChatGPT.

What You’ll Do

- Architect and ship backend systems used by AI agents.

- Build ML/agent pipelines, distributed inference, and automation frameworks.

- Own features vertically: design → build → test → deploy → iterate.

- Handle large-scale data, global risk signals, and compliance edge cases.

- Experiment with frontier AI models and agentic architectures.

- Collaborate directly with founders, researchers, and customers.

Requirements

- 2-8+ years of software engineering experience. (preferred 4-8yrs)

- Strong backend engineering background (Python preferred).

- Experience with AWS, distributed systems, or ML pipelines.

- Proven track record of shipping production systems.

- Strong communication skills and ability to operate with minimal process.

- Comfortable interacting with clients when needed.

Green Flags (Strong Matches)

- Experience with browser automation or computer vision.

- Background in distributed inference and optimization on AWS systems.

- Experience building transactional or financial systems.

- Familiarity with LLM systems and deep research pipelines.

- Prior founder or early-stage startup experience.

- Competitive programming background.

- Open-source contributions or strong GitHub projects.

- Experience in AML/KYC/financial crime domains.

Red Flags (Avoid)

- Pure data scientists without engineering depth.

- Academic/research profiles lacking production experience.

- No hands-on deployment experience.

Interview Process

1. Intro call (fit & motivation)

2. Technical screen / take-home

3. Deep-dive technical interview (no live coding)

4. 2-day paid in-person trial

5. Offer

Benefits & Perks

- Lunch, dinner & snacks at the office

- Comprehensive healthcare

- Unlimited PTO

- Annual company offsite (last: Mexico)

- Paid relocation + 1 month temporary housing

- Latest tech + multiple monitors

Biggest Note

- Candidates who are senior and strong in architecture are almost certain to be shortlisted.

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