
5001 - 10000 employees
👥 HR Tech
☁️ SaaS
🏢 Enterprise
💰 $1G Post-IPO Debt - Dayforce on 2024-03
HR Tech • SaaS • Enterprise
Dayforce is a cloud-based human capital management (HCM) platform (developed by Ceridian) that provides payroll, HR, workforce management, time & attendance, benefits administration, and talent management in a unified SaaS application for employers. It’s designed as an enterprise-focused, B2B solution for managing employee lifecycle and payroll compliance.
🔥 3 hours ago
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5001 - 10000 employees
👥 HR Tech
☁️ SaaS
🏢 Enterprise
💰 $1G Post-IPO Debt - Dayforce on 2024-03
HR Tech • SaaS • Enterprise
Dayforce is a cloud-based human capital management (HCM) platform (developed by Ceridian) that provides payroll, HR, workforce management, time & attendance, benefits administration, and talent management in a unified SaaS application for employers. It’s designed as an enterprise-focused, B2B solution for managing employee lifecycle and payroll compliance.
• Design and train high-performance computer vision models for automated damage detection, focusing on precision, recall, and model robustness. • Architect and maintain high-throughput, containerized microservices for model serving using REST/gRPC to ensure low-latency performance. • Collaborate with business stakeholders to translate complex inspection requirements into scalable, production-grade ML solutions. • Own the end-to-end model lifecycle, from experimentation and design to deployment and optimization in high-traffic environments. • Design and maintain robust data pipelines using Kafka to ensure high-fidelity inputs for model serving and inference.
• Graduate education (MS or PhD) in a computationally intensive domain or equivalent work experience. • 5+ years of prior computer vision experience • Advanced proficiency with Computer Vision frameworks (e.g., PyTorch, OpenCV, TensorFlow) and Python/SQL. • Experience designing and maintaining visual data annotation pipelines and evaluation frameworks for complex, real-world image datasets. • Experience optimizing high-latency models for real-time inference • Backend software engineering experience in the cloud (AWS / GCP) with a focus on microservices (docker) and the ML model development lifecycle. • Experience building and maintaining streaming data pipelines (e.g., Kafka) for real-time model serving.
Apply Now🔥 3 hours ago
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