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Technical Lead, AI Engineering

Parallel Wireless·Israel·en
PresencialTiempo completoAI EngineeringTelecommunications

Lead the architecture and hands-on delivery of production AI systems for cellular networks. The role covers agentic AI, machine learning, LLM applications, RAG, model serving, evaluation, and MLOps, while providing technical direction and mentoring from a site in Kfar Saba, Israel.

Responsabilidades

  • Define end-to-end architectures for AI and machine learning systems, including agent orchestration, model serving, data pipelines, RAG, and evaluation infrastructure.
  • Set technical direction for model, framework, deployment, and build-versus-buy decisions.
  • Prototype and implement critical components while establishing engineering and code-quality standards.
  • Lead AI solutions from prototype through production, including CI/CD, monitoring, model lifecycle management, versioning, and rollback.
  • Create evaluation frameworks, benchmarks, and safety criteria for AI systems operating on network data.
  • Mentor engineers through architecture discussions, design reviews, and code reviews.
  • Work with RAN, PHY, L2/L3, product, and customer-facing teams to turn network challenges into practical AI and machine learning solutions.
  • Contribute to technical roadmaps and customer-facing architecture discussions.

Requisitos

  • At least 7 years of software or machine learning engineering experience, including significant production-system delivery.
  • Proven technical leadership and end-to-end ownership of complex system architecture.
  • Strong Python skills and hands-on experience with PyTorch or a comparable machine learning framework.
  • Practical experience with LLM systems, including agents, tool calling, RAG, orchestration, prompt or context engineering, and evaluation.
  • Strong understanding of classical machine learning, including time-series analysis, anomaly detection, and supervised learning.
  • Working knowledge of 4G/5G RAN architecture, L1/L2/L3, network KPIs, and cellular network operations.
  • Experience with MLOps, containers, CI/CD, experiment tracking, model monitoring, and production deployment.
  • Excellent English and strong technical communication skills.

Se valora

  • Experience with RAN, wireless infrastructure, telecom operators, or chipset companies.
  • Knowledge of O-RAN, RIC, rApps/xApps, and E2, A1, or O1 interfaces.
  • Experience with link adaptation, scheduling, radio resource management, channel modeling, or PHY simulation.
  • Experience with reinforcement learning or contextual bandits for real-world control problems.
  • Experience deploying models in real-time or resource-constrained environments.
  • Background in signal processing, communications, or information theory.
  • Master’s or doctoral degree in computer science, electrical engineering, applied mathematics, or a related field.

Compatibilidad

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