AI Product Engineer - Philippines

Posted Yesterday
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Hiring Remotely in Philippines
Remote
Entry level
Artificial Intelligence • Software • Design
The Role
Own AI product builds from concept through production, including requirements gathering, LLM prototyping, data engineering, integrations, evaluation, security, reliability, and cost management. Serve as the primary technical client contact, instrument products with analytics and error analysis, iterate based on usage, and document learnings. The role requires strong engineering fundamentals, AI product delivery experience, data pipelines, web and infrastructure knowledge, and high autonomy.
Summary Generated by Built In
About Casper Studios

We’re an AI services firm that helps companies figure out where and how to use AI. We’ve built Casper Studios to roughly 45 people, worked with 30+ clients, and done deals with some of the largest companies, PE funds, and model providers.

It all comes down to how we work with clients. Before we build anything, we listen, understand the business, and help them figure out the highest-leverage way to get started on their AI journey.

About the Role

We're looking for engineers in the Philippines who are AI-native, have real fundamentals in programming, data, and systems, and have the judgment to get the most out of LLMs - and know where they break. The work spans enterprise document processing, workflow automation, computer vision, and financial research tooling, across finance, healthcare, and enterprise clients.

This is a role for someone who ships, owns outcomes, and wants unusual amounts of responsibility early.

What You’ll Do
  • Own AI product builds end to end, from concept through production, on a client engagement

  • Decide what to build and how: gather requirements, pressure-test what stakeholders ask for, and prioritize the work that matters

  • Prototype fast with LLMs, then harden into production with the data pipelines, integrations, and evals that make it trustworthy

  • Do the data engineering enterprise work requires: ingestion, data modeling, and ETL

  • Serve as the primary technical contact for clients - talk shop with their engineers and give their executives clarity

  • Instrument what you build (analytics, funnel metrics, error analysis) and iterate on real usage, not assumptions

  • Own reliability, security, and cost: auth, secrets, PII handling, and not blowing up the cloud bill

  • Write up what you learn; for the team, for clients, and publicly

What You’ll Bring
  • Strong engineering fundamentals: programming, debugging, and system design. You think well beyond the happy path.

  • You've shipped something real with an LLM that got actual usage - ideally with error analysis and evals on your outputs

  • Data engineering: data modeling and architecture, plus ETL/pipeline experience (Airflow, Dagster, Inngest, Prefect, or similar)

  • Web and infra fundamentals: auth and web security, profiling slow queries (N+1, unnecessary joins), CI/CD, and cost-aware deployment on a major cloud

  • You use modern AI tooling (e.g., Claude Code) daily, with customized workflows

  • High agency: you frame ambiguous problems, state your assumptions, and push work forward without being managed

  • Strong writing and a high say:do ratio - you can turn a long, meandering client call into a clean set of tickets

Nice To Haves
  • Fluency in and preference for TypeScript - much of our stack is full TS

  • Depth in one of our core verticals: financial services, healthcare, or enterprise / contact-center AI

  • Comfort being client-facing at a senior level

  • You've built observability for an AI product

  • You're plugged into the applied-AI community

You Might Be A Fit If
  • You've built and deployed something 0→1; shipped it, got real usage, and iterated

  • You're T-shaped: deep in one area (ML, full-stack, data, or security) and rounding out the rest

  • You've been the solo or founding engineer on a product and owned outcomes, not just tickets

Why This Role Is Hard To Fill

Most engineers land on one side of a line. Strong classical engineers often haven't built the judgment to know what LLMs can and can't do. Fast "vibe coders" can spin up a demo but can't debug it once it hits real data, real scale, or a real security requirement. We need both - plus the product sense and agency to run a client build largely alone. Someone who needs clean requirements and heavy supervision won't thrive here, and neither will someone whose work falls apart the moment it leaves the happy path.

Skills Required

  • Strong programming, debugging, and system design fundamentals
  • Experience shipping a real LLM-powered product with actual usage
  • Experience with error analysis and evaluations of LLM outputs
  • Data modeling and data architecture experience
  • ETL and data pipeline experience using Airflow, Dagster, Inngest, Prefect, or similar
  • Web and infrastructure fundamentals, including authentication and web security
  • Experience profiling and optimizing slow database queries
  • CI/CD experience
  • Cost-aware deployment on a major cloud platform
  • Daily use of modern AI tooling, such as Claude Code, with customized workflows
  • High agency and ability to work independently in ambiguous situations
  • Strong writing and ability to translate client discussions into clear tickets
  • Fluency in and preference for TypeScript
  • Depth in financial services, healthcare, or enterprise/contact-center AI
  • Comfort interacting with senior-level clients
  • Experience building observability for an AI product
  • Participation in the applied-AI community
  • Experience building and deploying a product from 0 to 1
  • Solo or founding engineer experience with ownership of outcomes
Am I A Good Fit?
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The Company
41 Employees
Year Founded: 2022

What We Do

Casper Studios is an AI services firm that helps businesses implement artificial intelligence across their internal operations and build customer-facing AI products. The company designs and codes custom software, integrating AI into the core product rather than adding it later. Its work includes product design, AI-integrated engineering, LLM development, strategic integrations, and ongoing support to improve user experiences and operational efficiency.

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