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[Remote] ML Engineer (AI-Native Systems & Forecasting)

Remote Full-time Live

Note: The job is a remote job and is open to candidates in USA. Ando is building AI-native workforce infrastructure for hourly workers, focusing on creating accurate demand forecasts and optimizing labor allocation. The ML Engineer will design, develop, and deploy machine learning systems, impacting real-world outcomes through the full data and ML lifecycle.

Responsibilities

  • Design, build, and deploy production-grade ML systems for demand forecasting and labor optimization
  • Own the full ML lifecycle, including data ingestion, feature engineering, model training, deployment, and monitoring
  • Inherit and remediate messy, inconsistent datasets and establish scalable data pipelines
  • Architect data systems across ingestion, warehousing, transformation, and feature stores
  • Build and maintain LLM-native systems, including RAG pipelines, prompt systems, and evaluation frameworks
  • Make pragmatic decisions on modeling approaches, including when to use APIs, fine-tuning, or custom models
  • Design and implement model evaluation systems that measure performance continuously, not just at launch
  • Implement monitoring, drift detection, and feedback loops to improve model performance over time
  • Design and run experiments, including A/B testing and statistical validation of model performance
  • Translate model performance and tradeoffs into clear insights for product and business stakeholders
  • Collaborate closely with Product, Engineering, and Operations to integrate ML into core workflows

Skills

  • 5–10+ years of experience in machine learning, data science, or applied AI roles
  • Proven experience shipping ML systems into production environments
  • Strong experience working with real-world, imperfect datasets in mid-maturity or scaling organizations
  • Deep understanding of the full data stack, including ingestion, warehousing, feature engineering, and model serving
  • Experience designing and operating ML pipelines and workflows in production
  • Hands-on experience with LLM systems, including RAG, prompt design, and evaluation frameworks
  • Strong foundation in statistics, experimentation, and model evaluation
  • Experience with monitoring, observability, and model performance tracking over time
  • Ability to operate with high ownership, ambiguity, and minimal process overhead
  • Strong communication skills, with the ability to translate technical decisions into business impact
  • Experience with time-series forecasting, demand modeling, or optimization systems
  • Experience building or integrating with labor, logistics, or marketplace systems
  • Familiarity with modern ML infrastructure (Airflow, dbt, feature stores, etc.)
  • Experience fine-tuning or training custom models
  • Experience hiring or mentoring ML or data team members

Company Overview

  • AI-native workforce infrastructure for predictive demand and intelligent workforce allocation. It was founded in 2024, and is headquartered in San Francisco, California, USA, with a workforce of 11-50 employees. Its website is https://ando.work.
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