Offshore Software Engineer - AviatorOS
Budget: $9.62 - $14.42
HOURLY / FULL_TIME
⭐ 4.66 (9)
United States
typescript, postgresql, git, redis, python
Preferred qualifications
- Location: Philippines
- Experience: Intermediate
AviatorCare
· 9am to 5pm US Eastern- Option of Monday-Friday or Sunday-Thursday
The product
* Internal practice-management and clinical-operations platform for a telehealth provider. It sits as a middleware layer between our staff and the Healthie EHR
* Python/FastAPI backend + Next.js/React frontend in a monorepo, handling live PHI for real patients - not a greenfield project and not a prototype.
* Small team, high ownership. You will take features end-to-end: data model →API → UI → tests → deploy. You will not be handed pre-decomposed tickets.
What you'll work on
* Patient intake, chart notes, scheduling, and billing workflows used daily by clinical staff.
* Third-party integrations: EHR, clearinghouse/eligibility vendors, CRM, and form webhooks.
* An in-app clinical AI Copilot built on streaming LLM APIs.
Required experience
* Python 3.12 + FastAPI
* TypeScript + Next.js 15 (App Router) + React 19
* Zustand for client state, or other strong global state management experience
* GraphQL as a consumer - writing and debugging queries and mutations against a third-party API you do not control
* REST/HTTP integration
* Unit testing with Vitest and Pytest
* Redis caching
* PostgreSQL / Supabase
* Git fluency
Strong plus
* US healthcare domain knowledge: insurance eligibility (EDI 270/271), payer and plan-type classification, Medicare vs. Medicare Advantage vs. Medicaid, MBIs, CPT/ICD-10, CMS-1500 claims.
LLM application engineering: OpenAI/Anthropic APIs, streaming over SSE,tool/function calling, prompt design, token and cost control, multi-turn session persistence.
* CRM and webhook integration work: Zoho CRM REST v8, OAuth 2.0 client credentials, form webhooks.
Observability: Sentry, PostHog, and log-driven debugging in a hosted environment.
How we work
* Strong written English. Most communication is asynchronous: PR descriptions, design proposals, written status. You need to explain a trade-off in writing without a call.
* Escalates early. When a spec is ambiguous or an approach is blocked, you raise it within hours instead of shipping a guess three days later.
* Reads before writing. The repo carries extensive internal documentation —architecture notes, per-domain summaries, prior implementation plans. Search that context before proposing a design.
* Comfortable using AI coding agents (Claude Code)
as part of the normal workflow — planning, implementing, and verifying with agent assistance, while staying fully accountable for the code you submit.
* Updates internal documentation as part of finishing a task, not as an afterthought.
Not required
* Mobile, Kubernetes/DevOps, ML training, or data-engineering experience.
* Prior US healthcare experience is a strong plus, but not a hard gate for an otherwise excellent Python/TypeScript integration engineer.
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