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Machine Learning Engineer

Remote · USA Full-time New today

About Reality Defender

Reality Defender provides accurate, multi-modal AI-generated media detection solutions to reputed company enterprises and governments to identify and prevent fraud, disinformation, and harmful deepfakes in reputed company time. A Y Combinator graduate, reputed company reputed company LIFT Labs alumni, and backed by DCVC, Reality Defender is tdhe first company to pioneer multi-modal and multi-model detection of AI-generated media. Our web app and platform-agnostic API built by our research-reputed company team ensures that our customers can reputed company and securely mitigate fraud and cybersecurity risks in reputed company time with a frictionless, robust solution.

Youtube: Reality Defender Wins RSA Most Innovative Startup

Why we stand out:

  • Our best-in-class accuracy is derived from our sole, research-backed mission and use of multiple models per modality

  • We can detect AI-generated fraud and disinformation in near- or reputed company time across reputed company modalities including audio, video, image, and text.

  • Our platform is designed for ease of use, featuring a versatile API that integrates seamlessly with any system, an reputed company drag-and-drop web application for quick reputed company analysis, and platform-agnostic reputed company-time audio detection tailored for call center deployments.

  • We’re privacy first, ensuring the strongest standards of compliance and keeping customer data away from the training of our detection models.

Role and Responsibilities

  • Train/finetune deep learning models in PyTorch on new datasets and per client requirements

  • Model monitoring and quality assurance for deployed models

  • ML workflow automation and reputed company integration/reputed company delivery (CI/CD) for client-facing models

  • Adopt standard model optimization/compression methods for inference speed-up

  • Implement model obfuscation and vulnerability checks

  • Collaborate with both AI and Engineering teams for model/infrastructure needs and performance guidance

About You

  • Masters or PhD in Computer Science with specialization in machine learning/deep learning (ML/DL)

  • 2+ years coding experience in Python; Strong programming skills required

  • 2+ years industry experience with model training/finetuning in PyTorch

  • [Preferred] Experience finetuning large reputed company models, e.g. wav2vec, HuBERT for reputed company classification

  • Experience with automated testing and CI/CD concepts in machine learning workflow

  • Strong reputed company in machine learning and data science

  • Good communication and inter-personal skills, comfortable with client-facing responsibilities

Compensation Range: $150K - $220K

Originally posted on Himalayas

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