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Cutsforth Inc.

Signal Processing Engineer – RF, Acoustics

Cutsforth Inc.

Signal Processing Engineer for Cutsforth LLC applying machine learning in RF and acoustic analysis. Designing and deploying signal processing solutions in industrial and defense-related applications.

Posted 7/11/2026full-timeRemote • California, Illinois, New York • 🇺🇸 United StatesMid-LevelSenior💰 $98,837 - $154,546 per yearWebsite

Core Competencies

Role fit
Core Competencies

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Expertise in data science and machine learning applied to signal processing, with a strong focus on RF and acoustic data analysis. Proficient in developing and deploying production-grade ML solutions and communicating technical findings effectively to diverse stakeholders.

Highest-signal resume keywords
Data ScienceMachine LearningSignal ProcessingPython ProgrammingRF Analysis

ATS Keywords

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Applicant Tracking System Keywords

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Hard Skills
Signal Feature ExtractionTime-Series AnalysisSpectral AnalysisFeature EngineeringBeamformingMatched FilteringWavelet DecompositionAcoustic Signal ProcessingML FrameworksData Ingestion
Soft Skills
Analytical SkillsProblem-SolvingCommunication Skills
Tools & Technologies
NumPySciPyPandasScikit-learnPyTorchTensorFlowSpectrum AnalyzersNetwork AnalyzersSignal GeneratorsOscilloscopes
Industry Keywords
AerospaceTelecommunicationsMilitary/Defense CommunicationsIndustrial AcousticsRF/Electronic SystemsElectromagnetic Compliance

Tech Stack

Tools & technologies
NumpyPandasPythonPyTorchScikit-LearnTensorflow

About the role

Key responsibilities & impact
  • Applies data science and machine learning to the analysis of radio frequency and acoustic signals, transforming raw time-series sensor data into actionable diagnostics and predictive insights.
  • Partners with engineering and domain experts to design and deploy production-grade signal processing and ML solutions across industrial, communications, and defense-adjacent applications.
  • Operates effectively in ambiguous problem spaces where signal quality, environmental noise, and domain constraints require both technical rigor and adaptive thinking.
  • Design and develop signal processing pipelines and machine learning models that operate on RF, acoustic, and time-series sensor data, including beamforming, BSS, spectral subtraction, matched filtering, wavelet decomposition, and time-frequency analysis techniques.
  • Evaluate algorithm performance using both objective metrics and subjective measures, including integration with speech recognition engines where applicable.
  • Perform exploratory data analysis, feature engineering, and signal feature extraction on raw demodulated RF and acoustic data to surface patterns and anomalies.
  • Analyze and interpret signals from various electrical asset monitoring systems utilizing RF, acoustic, and signal processing expertise to support fault isolation and anomaly detection.
  • Use asset monitoring sensor data as measurement to characterize and validate signal data.
  • Apply data-driven signal processing methods to characterize and isolate faults at the subsystem, component, and LRU level — identifying root causes from spectral, RF, and acoustic sensor data in complex industrial systems.
  • Contribute to end-to-end ML workflows including data ingestion, model training, inference, and monitoring for drift and degradation in live environments.
  • Collaborate with engineering, product, and domain SMEs to translate operational challenges into well-scoped data science solutions.
  • Communicate findings, model performance, and business value clearly through visualizations, written documentation, and presentations to technical and non-technical stakeholders.
  • Explore and evaluate emerging signal processing and AI techniques, recommending production incorporation where appropriate.

Requirements

What you’ll need
  • Bachelor’s degree in Electrical Engineering, Computer Engineering, Physics, Applied Mathematics, Acoustical Engineering, Aerospace Engineering, or a closely related engineering discipline required.
  • 5+ years of professional experience in data science, machine learning, or applied signal processing, with demonstrated work on RF, acoustic, ultrasonic, or communications signal data.
  • Direct industry experience in one or more of: Aerospace, Telecommunications, Military/Defense communications, Industrial Acoustics, or RF/Electronic Systems.
  • Hands-on experience with time-series and signal processing techniques, including spectral analysis, filtering, and feature extraction from raw sensor or radio data.
  • Proficiency in Python, including scientific computing libraries (NumPy, SciPy, pandas) and ML frameworks (scikit-learn, PyTorch, or TensorFlow).
  • Demonstrated use of RF measurement and analysis workflows, including use of spectrum analyzers, network analyzers, signal generators, and oscilloscopes in a professional engineering context.
  • Strong analytical and problem-solving skills with the capacity to work through ambiguous or data-sparse problem spaces.
  • Excellent written and verbal communication skills; ability to present technical findings to non-technical audiences.
  • Knowledge of Electromagnetic Compliance techniques.

Benefits

Comp & perks
  • Paid Time Off
  • Medical, Vision, Dental Insurance
  • Health Savings Account with Employer contributions
  • 401(k) with Employer match
  • Short-term & Long-term Disability Coverage
  • Accidental Death & Dismemberment Coverage
  • Life Insurance Coverage
  • Eight paid holidays per year