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Machine Learning Engineer

Los Angeles CA💼 Full-time💰 $100,000–$100,000🗓 2026-05-28 → 2026-07-31

Core

Applying machine learning and data-driven techniques to improve the performance, efficiency, and adaptability of advanced MIMO radios and wireless networking systems in dynamic RF environments.

Role type

Machine Learning Engineer (Wireless Communications)

Builds

ML-driven features for Silvus' MANET radios and proprietary MN-MIMO waveform

Domain

Defense, law enforcement, public safety; Wireless communications, MIMO, MANET

Deliverable

production ML models

Required skills

Supervised and unsupervised learning, statistical modeling, Python ML frameworks (TensorFlow, PyTorch, scikit-learn), RF dataset analysis, software prototyping, data pipeline design

Preferred skills

RF signal classification, anomaly detection, spectrum monitoring, MATLAB/C++ for signal processing, embedded ML, adaptive modulation, beamforming, cognitive radio, 3GPP/IEEE standards, GPU acceleration

Technologies

TensorFlow, PyTorch, scikit-learn, MATLAB, C/C++, Python

Responsibilities

Research, design, and implement ML algorithms for link adaptation, interference mitigation, anomaly detection, and spectrum sensing; Analyze real-world RF datasets to extract insights and develop predictive models; Develop software prototypes and integrate ML algorithms with radio firmware and networking stack; Collaborate with cross-functional teams to define ML use cases and evaluate deployed models; Contribute to the design of data pipelines and infrastructure for training, testing, and validating models; Participate in performance benchmarking and iterative improvement cycles

Seniority

Mid-level (2+ years experience)

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