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Hire Hangar

Full-Stack AI Engineer

South Africa - Cape Town · Parugauy - Asuncion · Ecuador - Guayaquil · Bolivia - Santa Cruz de la Sierra · Manila · Egypt - Cairo · Philippines - Davao City · South Africa - Johannesburg · Columbia - Bogotá · Columbia - Medellín · Chile - Santiago · Uruguay - Montevideo · Peru - Lima · Dominican Republic - Santo Domingo · Nicaragua - Managua · Jamaica - Kingston · Argentina - Buenos Aires · Panama - Panama City · Honduras - Tegucigalpa · Poland - Kraków · Poland - Warsaw · Mexico - Mexico City

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hirly's read of this role

Role family
Engineering
Seniority
Mid level
Countries
ZA, PY, EC, BO, PH, EG, CO, CL, UY, PE, DO, NI, JM, AR, PA, HN, PL, MX
Work mode
Remote-friendly
First seen by hirly
6 Sept 2026

Derived automatically from the posting. Upload your resume above to see how the role scores against it.

the posting

Join Hire Hangar and work with fast-growing global companies while building a long-term career.

Job Title Full-Stack AI Engineer

Location Remote

Time Zone US Time Zones (EST–PST)

  • Role Overview
  • We are seeking a senior Full-Stack AI Engineer to join our platform team and own the end-to-end build of a data ingestion and intelligence layer for enterprise customers in the media vertical. This is a high-impact, high-ownership role at the intersection of AI, data engineering, and product. You will architect and ship pipelines that transform unstructured creative assets and ad performance data into a semantic, vector-based layer — and expose it through AI agents and a polished React frontend. We move fast, ship to production, and hold a high bar for craft and reliability.

What You'll Build

A dual-mode data ingestion engine handling creative components (CTAs, headers, body copy, images, video, and metadata) and ad performance data (channel-level signals tied to those components)

Multi-modal embedding generation and storage — vector plus structured — optimised for retrieval quality and cost

AI agent tooling that enables natural language search, comparison, and reasoning across the creative and performance data layer

A React frontend that lets users explore the creative library, query performance data in plain English, and surface actionable optimisation insights

Audit-logged decisioning and governance infrastructure to meet enterprise-grade requirements

Key Responsibilities

Design and build durable, idempotent ingestion pipelines for creative and performance data at scale (queues, retries, backpressure, dedup, schema evolution)

Generate and manage embeddings for multi-modal creative assets; select and operate the right vector store for the workload

Build and maintain retrieval pipelines that serve AI agent tools with accurate, low-latency responses

Ship agent-style systems with tool use, state management, and multi-step reasoning workflows

Develop and maintain the React frontend for the creative intelligence library and query interface

Own the full lifecycle of your systems: design, build, deploy, monitor, and iterate

Contribute to stack decisions with clear reasoning grounded in production experience

Collaborate closely with product and enterprise partners to translate requirements into reliable, scalable systems

Required Qualifications

Strong TypeScript — you use types as a design tool, not a formality

Production experience with serverless or edge runtimes (Cloudflare Workers, Vercel, Lambda, Deno Deploy, or equivalent)

Demonstrated experience building durable, idempotent ingestion pipelines with queuing, retry logic, backpressure handling, deduplication, and schema evolution

Practical, production-level understanding of embeddings, chunking strategies, and retrieval quality tuning

At least one agent-style system shipped to production: tool use, stateful multi-step workflows — framework matters less than the experience

React fluency with modern patterns and component architecture

Comfort operating across two cloud environments; able to reason clearly about when to use edge compute vs. managed data/AI services, and how to bridge them

Must have prior remote work experience, be fluent with remote collaboration tools and platforms (such as Slack, Zoom, Google Workspace, Linear, or similar), and have ideally worked with US or UK-based companies. Applications without this experience will not be considered.

Preferred Qualifications

Experience building or operating RAG systems in production

Familiarity with current embedding models and the tradeoffs across dimension, quality, and cost

Background in ETL design, observability for data pipelines, or evaluation frameworks for retrieval quality

Adtech, performance marketing, or marketing analytics background — understanding what channels, attribution, and creative testing look like in a live production context

Opinions on vector databases (Cloudflare Vectorize, Vertex AI Vector Search, Turbopuffer, or similar) backed by hands-on experience

Tools & Technology

TypeScript (primary language across the stack)

Cloudflare Workers, Queues, and Agents SDK (or equivalent edge runtime)

GCP — Vertex AI for embeddings and related data/AI services

Vector database (to be selected: Cloudflare Vectorize, Vertex AI Vector Search, Turbopuffer, or similar)

React with Remix or TanStack Start (TBD)

Google Workspace, Slack, Zoom, and standard remote collaboration tooling

Please NOTE

It is crucial that you complete the application form in full. As part of the application process, you will be required to record a video. If your application is successful, you will receive an email confirming next steps — the video is the first step of the interview process. If you do not record a video, we will not be able to consider you for ANY open roles.

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Original posting on Hire Hangar's site ↗

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