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Python FastAPI Engineer for Machine Learning and Risk Modeling

ascii group, llc • United State
Remote
This Job is No Longer Active This position is no longer accepting applications
AI Summary

We are seeking a Python FastAPI Engineer to design and operate scalable REST APIs that serve machine learning-driven risk models. This role is critical for bridging the gap between data science and production, focusing on real-time scoring for loans/customers, batch scoring pipelines, and robust model governance. The ideal candidate will have strong hands-on experience with Python and FastAPI, as well as experience serving or integrating ML models in production.

Key Highlights
Design and develop high-performance REST APIs using FastAPI
Support model hosting and execution environments
Implement operational capabilities for model governance
Key Responsibilities
API Development
ML Integration
Model Governance
Observability & MLOps
Testing & Quality
Technical Skills Required
Python FastAPI AWS SageMaker Git OpenAPI/Swagger documentation
Benefits & Perks
$50/hr
100% Remote (United States)

Job Description


Role: Python FastAPI Engineer (ML & Risk Modeling)

Location: 100% Remote (United States)

Compensation: $50/hr (W2)

Duration: 6 Months


Position Overview

We are seeking a Python FastAPI Engineer to design and operate scalable REST APIs that serve machine learning-driven risk models (e.g., PD/LGD risk rating). This role is critical for bridging the gap between data science and production, focusing on real-time scoring for loans/customers, batch scoring pipelines, and robust model governance.


Key Responsibilities

* API Development: Design and develop high-performance REST APIs using FastAPI for real-time and batch model scoring.

* ML Integration: Support model hosting and execution environments (e.g., SageMaker) and ensure flexible deployment patterns for Python-based models.

* Model Governance: Implement operational capabilities including versioning/lineage, audit trails, and explainability/reason codes.

* Observability & MLOps: Build monitoring pipelines for performance, availability, and model drift using structured logging, metrics, and tracing.

* Testing & Quality: Ensure strong input validation, error handling, and solid engineering practices via unit/integration testing and CI/CD.


Required Qualifications

* Core Skills: Strong hands-on experience with Python and FastAPI (building production-grade services).

* MLOps Experience: Proven experience serving or integrating ML models in production (Risk scoring, classification, or regression).

* Cloud & Tools: Experience with AWS (SageMaker preferred), Git-based workflows, and OpenAPI/Swagger documentation.

* Governance Knowledge: Familiarity with model lineage, version control, and explainability hooks.

* Testing: Mastery of unit/integration testing and CI/CD pipelines.


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