Sigma Software

Information Technology And Services

MachineLearningEngineer(SoundDetection)

Ukrainka, Kyiv Oblast, Ukraine FULL TIME
Market Sentiment
HIGH DEMAND

Neural analysis suggests this role is
optimal for mid candidates.

The Brief

“Machine Learning Engineer (Sound Detection) at Sigma Software. Skills: Audio Machine Learning, Edge AI, Sound Detection, Python. Design and develop audio-based detection systems. Implement signal processing pipelines”

Industry & Context.

Information Technology And Services
Problems you'll solve

problem-solving mindset

What They're Looking For.

Must Have

4+ years in ML / Audio / DSP / Edge AI, knowledge of audio signal processing, Experience working with noisy environments, Hands-on experience with ML for audio, Proficiency in training on imbalanced datasets, Ability to build low-latency streaming pipelines, Experience deploying models on edge devices, Optimization skills using ONNX, TensorRT, OpenVINO, Production-level Python engineering experience, Proven track record of production deployment, Professional proficiency in English

Nice to Have

Acoustic domain knowledge, Sensor fusion experience, Hardware integration skills

What You'll Do.

Design and develop audio-based detection systems

Implement signal processing pipelines

Build and optimize machine learning models

Develop low-latency streaming pipelines

Handle imbalanced datasets

Deploy and optimize models on edge hardware

Optimize inference performance

Develop production-grade Python systems

Ensure system robustness

Collaborate with engineering teams

How You'll Work.

Team & Collaboration

Collaborate with ML, hardware, and systems engineering teams; collaboration skills in cross-functional teams

Communication Scope

Professional proficiency in English

Full Job Description

We are looking for an Audio Machine Learning / Edge AI Engineer to design and deploy real-time acoustic detection systems operating in complex and noisy environments. This role focuses on sound-based situational awareness and requires end-to-end ownership — from audio signal processing and ML model development to optimization and deployment on edge devices operating under constrained conditions. You will work at the intersection of audio signal processing, machine learning, and embedded systems, building robust solutions capable of reliable performance in real-world field environments. * Design and develop audio-based detection and classification systems for challenging real-world environments * Implement robust signal processing pipelines tailored for noisy outdoor conditions * Build and optimize machine learning models for sound event detection * Develop low-latency, high-reliability streaming pipelines * Handle imbalanced and imperfect datasets using augmentation and synthetic data techniques * Deploy and optimize models on edge hardware platforms (Jetson, Raspberry Pi, etc.) * Optimize inference performance using ONNX, TensorRT, and OpenVINO * Develop production-grade Python systems with modular architecture and multiprocessing capabilities * Ensure system robustness under variable acoustic conditions and hardware constraints * Collaborate with ML, hardware, and systems engineering teams to deliver integrated solutions ## Qualifications * 4+ years in ML / Audio / DSP / Edge AI * Strong knowledge of audio signal processing (spectrograms, noise reduction, feature extraction) * Experience working with noisy environments (wind, city, nature) * Hands-on experience with ML for audio (CNNs, YAMnet, ONNX) * Proficiency in training on imbalanced datasets and applying augmentation techniques * Ability to build low-latency streaming pipelines for real-time audio processing * Experience deploying models on edge devices (Raspberry Pi, Jetson Nano) * Optimization skills using

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