Course Acad ID: ACAD0570
AI Speech Recognition Training in United States

This course focuses on how spoken language is converted into text using AI, covering speech data processing, transcription workflows, accuracy optimization, multilingual support, and real-world applications such as call analytics, voice assistants, media transcription, and accessibility solutions.

Overview

AI Speech Recognition Training is a practical two-day program designed to help learners understand how artificial intelligence enables speech recognition and transcription systems This course focuses on how spoken language is converted into text using AI, covering speech data processing, transcription workflows, accuracy optimization, multilingual support, and real-world applications such as call analytics, voice assistants, media transcription, and accessibility solutions.

Learning Outcomes

• Understand AI speech recognition concepts
• Learn speech-to-text processing basics
• Understand voice data workflows
• Gain knowledge of language recognition techniques
• Learn real-time speech processing
• Understand conversational AI integration
• Explore voice automation applications
• Identify speech AI use cases

Duration & Delivery Mode

14 hours

We serve:
Target Audience

• AI and machine learning beginners
• Developers exploring speech and voice technologies
• Product managers working on voice-enabled solutions
• Media, transcription, and content professionals
• Technology professionals adopting speech AI systems

Pre-requisites

• Basic understanding of artificial intelligence or machine learning concepts
• Familiarity with audio, speech, or media content is beneficial
• General awareness of data processing concepts
• Interest in voice-based and speech-driven AI applications

Skillset Achieved

• Understanding core concepts of speech recognition and transcription
• Awareness of speech-to-text workflows and AI models
• Knowledge of accuracy, language, and noise-handling considerations
• Evaluating real-world speech recognition use cases
• Applying ethical and responsible practices in speech AI systems

Course Outcome

By the end of this training, participants will be able to explain how AI-powered speech recognition systems work, understand transcription workflows and accuracy challenges, evaluate real-world applications, and apply ethical and responsible practices when deploying speech-to-text solutions.

Course Outline

Introduction to Speech Recognition and AI
• Overview of speech recognition and transcription systems
• Difference between speech recognition, voice AI, and audio AI
• Key components of speech-to-text pipelines
• Common use cases and industry adoption

Speech Data and Audio Processing Fundamentals
• Audio signals, sampling, and speech characteristics
• Noise, accents, and speech variability challenges
• Feature extraction concepts for speech recognition
• Preparing audio data for transcription

Speech Recognition Models and Transcription Workflows
• Automatic speech recognition fundamentals
• Real-time versus batch transcription
• Handling punctuation, timestamps, and speaker separation
• Measuring transcription accuracy and performance

Multilingual, Domain-Specific, and Scalable Transcription
• Multilingual and accent-aware transcription
• Domain adaptation and specialized vocabularies
• Transcription for meetings, calls, and media
• Scaling speech recognition systems

Applications and Integration Scenarios
• Call analytics and customer support transcription
• Media, podcast, and video transcription
• Accessibility and assistive technologies
• Integrating speech recognition into applications

Ethics, Privacy, and Future Trends
• Privacy, consent, and audio data protection
• Bias and fairness in speech recognition systems
• Responsible deployment of transcription AI
• Future trends in speech and voice technologies

Assessment Topics

• Speech recognition fundamentals
• Speech-to-text concepts
• Audio preprocessing techniques
• Language and voice recognition basics
• Real-time speech processing
• Conversational AI workflows
• Voice automation concepts
• NLP integration basics
• Accuracy and performance considerations
• Practical speech AI scenarios

Evaluation

• Conceptual understanding assessments
• Speech transcription use case analysis exercises
• Accuracy and quality evaluation activity
• Final knowledge evaluation quiz

Course Materials

Participants will receive course materials, slides, reference materials, exercises and access to resources for further learning.

Certification

Participants who successfully complete the training will receive an AcadNXT Certification in AI Speech Recognition Training, validating their expertise in understanding speech recognition concepts, transcription workflows, ethical considerations, and real-world applications.

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Tue 29th Sep 2026 – Wed 30th Sep 2026
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AcadNXT Classroom - San Francisco, California San Francisco United States
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