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Hybrid Event

7th - 8th July 2026 | New York, USA

International Conference on Big Data-driven IT Solutions and Machine Learning (ICBDITSML - 26)

4

Days

4

Hrs

07

Min

02

Sec

Conference Program

Session Tracks

SDG Wheel

Aligned with

UN Sustainable Development Goals

This conference contributes to global sustainability by aligning its research discussions and academic sessions with key United Nations Sustainable Development Goals. It fosters knowledge exchange, innovation, and collaborative engagement.

Why it matters

SDG 4 — Quality Education
SDG 8 — Decent Work and Economic Growth
SDG 9 — Industry, Innovation and Infrastructure
SDG 11 — Sustainable Cities and Communities
SDG 12 — Responsible Consumption and Production
SDG 13 — Climate Action
Explore All Session Tracks
Track 01
Innovations in Big Data Frameworks

This track focuses on the latest advancements in big data frameworks that enhance data processing capabilities. Researchers are encouraged to present their findings on scalable architectures and their applications in various industries.

Track 02
Machine Learning Algorithms for Predictive Analytics

This session will delve into novel machine learning algorithms that improve predictive analytics in diverse fields. Contributions should highlight the effectiveness of these algorithms in real-world applications and their impact on decision-making.

Track 03
AI Integration in Information Technology

This track examines the integration of artificial intelligence into existing IT infrastructures to optimize performance. Papers should explore case studies and frameworks that demonstrate successful AI implementations.

Track 04
Cloud Computing and Big Data Solutions

This session addresses the intersection of cloud computing and big data, focusing on solutions that enhance data accessibility and processing. Participants are invited to discuss innovative cloud-based architectures and their implications for IT strategies.

Track 05
Data Engineering for Intelligent Systems

This track emphasizes the role of data engineering in the development of intelligent systems. Submissions should explore methodologies that facilitate the efficient processing and analysis of large datasets.

Track 06
Automation in Data Analytics

This session investigates the automation of data analytics processes to improve efficiency and accuracy. Researchers are encouraged to present tools and techniques that streamline data analysis workflows.

Track 07
Scalable Computing for Big Data Applications

This track focuses on scalable computing solutions that address the challenges posed by big data applications. Contributions should highlight innovative approaches to enhance computational efficiency and resource management.

Track 08
Business Intelligence and Data-Driven Decision Making

This session explores the role of business intelligence in facilitating data-driven decision-making processes. Papers should discuss frameworks and tools that enable organizations to leverage big data for strategic insights.

Track 09
Optimization Techniques in Machine Learning

This track highlights optimization techniques that enhance the performance of machine learning models. Submissions should focus on novel approaches that improve model accuracy and computational efficiency.

Track 10
IT Innovation through Big Data Analytics

This session examines how big data analytics drives innovation within IT sectors. Researchers are invited to present case studies that illustrate the transformative impact of data-driven solutions on business practices.

Track 11
AI-Enabled Analytics for Enhanced System Efficiency

This track focuses on the application of AI-enabled analytics to improve system efficiency across various domains. Contributions should explore methodologies that integrate AI techniques with traditional analytics to yield superior outcomes.

2026 UPDATE

Consistent Academic Support

Science Net ensures that research activities continue without interruption in the current global situation. Participants can engage through digital and hybrid conference formats.