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How Julius AI Simplifies Data for US Businesses and Research?

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A San Francisco-based AI data analyst, Rahul Sonwalkar founded this innovative platform in the increasingly data-driven landscape of the United States. The tool understands complex information swiftly and accurately due to which it has rapidly gained traction. It isn’t just a simple chatbot but it leverages powerful Large Language Models (LLMs). According to the Effortless Academic, these are the same foundational technology behind tools like ChatGPT or Google’s Gemini.

Moreover, it recently secured a significant $10 million in seed funding. This round was led by Bessemer Venture Partners, with key participation from Y Combinator, Horizon VC, AI Grant, 8VC, and a host of prominent angel investors, as per FINSMES. Julius AI is democratising data analysis, and making sophisticated insights accessible to everyone. It streamlines operations by removing the barrier of coding. from Fortune 500 companies to academic researchers.  

Check Out: Microsoft Launches Copilot Mode in Edge – Here’s What It Does and How to Use It

How Does it Simplify the Data for US Businesses?

For US businesses, Julius AI acts as a personal AI data analyst, and eliminates the need for extensive technical expertise or lengthy waits for data teams. For example, companies often sit on vast amounts of data, which is a goldmine of information, yet extracting the insights often become a significant hurdle. Julius AI bridges this gap by allowing users to interact with their data using plain English prompts. Below are the key benefits it provides in the business operations: 

  • The platform excels at generating detailed analyses by creating professional-looking data visualisations such as charts and graphs

  • It is able to perform advanced functions like predictive forecasting and statistical modelling. This helps marketing managers to quickly identify campaign effectiveness. 

  • Finance teams can track metrics in real-time, and operational leaders can optimise processes with unprecedented speed

  • The Julius AI tool supports various data file formats. This includes spreadsheets such as Excel, CSV, PDFs, and Google Sheets. Further, it offers direct data connectors to popular databases like PostgreSQL, BigQuery, and Snowflake. This seamless integration ensures that data remains secure while insights flow freely. It empowers businesses to make faster, more informed decisions and maintain a competitive edge.

How Does the Julius AI Empowers US Research and Academics?

Beyond the corporate world, Julius AI is proving to be an invaluable tool for US researchers and academic institutions. Traditional research often involves laborious data cleaning, complex statistical programming, and time-consuming literature reviews. Julius AI significantly streamlines these processes, and allows the researchers to focus more on interpretation and discovery rather than the mechanics of data manipulation.

  • The platform facilitates article summarisation, enabling quick comprehension of extensive scientific literature. It can generate literature reviews in seconds, a task that typically consumes countless hours. 

  • For quantitative research, Julius AI performs a range of statistical analyses, including statistical tests and ANOVA, and can generate confidence intervals, all through natural language commands. 

  • It also aids in qualitative coding, transforming textual content into actionable insights.

  • The academic community has already recognised its utility such as the Harvard Business School has integrated Julius AI into its “Data Science and Artificial Intelligence for Leaders” course. Similarly, the Rice University Business School dedicates units to teaching the platform, and signals its role in shaping the next generation of data-literate professionals in classroom.

Check Out: AI Takeover in the U.S. Workforce: The Growing Skills Gap Among Employees

Key Facts About Julius AI

From its origins in San Francisco to its recent significant funding, here are the key facts of what makes Julius AI a pivotal tool in the world of data: 

Subject

Description

Name

Julius AI

Founded

2022

Founder

Rahul Sonwalkar

Headquarters

San Francisco, California, USA

Mission

To make AI-powered data analysis accessible to everyone without coding.

Recent Funding

$10 million Seed funding (July 2025), led by Bessemer Venture Partners.

Core Function

Simplifies data analysis, visualization, and transformation using natural language (plain English) prompts.

Key Capabilities

Performs data analysis, statistics, predictive forecasting, cleans and prepares data, generates charts and reports automatically. 

Data Sources

Excel, CSV, PDF, Google Sheets, PostgreSQL, BigQuery, Snowflake.

Underlying Tech

Uses LLMs to translate natural language into Python/R code

Target Audience

Businesses, data scientists, researchers, and academics.

Benefits

No-code, rapid insights, increased productivity, democratizes data analysis, secure.

This focus on accessibility and efficiency is not merely a convenience but it’s a fundamental shift towards a future where every question about data can be answered swiftly. Juluis AI aims to drive innovation and informed decision-making across all sectors.





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Human-Machine Understanding in AI | Machine Precision Meets Human Intuition

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How to Scale Up AI in Government

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State and local governments are experimenting with artificial intelligence but lack systematic approaches to scale these efforts effectively and integrate AI into government operations. Instead, efforts have been piecemeal and slow, leaving many practitioners struggling to keep up with the ever-evolving uses of AI for transforming governance and policy implementation.

While some state and local governments are leading in implementing the technology, AI adoption remains fragmented. Last year, some 150 state bills were considered relating to the government use of AI, governors in 10 states issued executive orders supporting the study of AI for use in government operations, and 10 legislatures tasked agencies with capturing comprehensive inventories.

Taking advantage of the opportunity presented by AI is critical as decision-makers face an increasing slate of challenging implementation problems and as technology quickly evolves and develops new capabilities. The use of AI is not without risks. Developing and adapting the necessary checks and guidance is critical but can be challenging for such dynamic technologies. Shifting from seeing AI as merely a technical capability to considering what AI technology should be asked to do can help state and local governments think more creatively and strategically. Here are some of the benefits governments are already exploring:


Administrative efficiency: Half of all states are using AI chatbots to reduce administrative burden and free staff for substantive and creative work. The Indiana General Assembly uses chatbots to answer questions about regulations and statutes. Austin, Texas, streamlines residential construction permitting with AI, while Vermont’s transportation agency inventories road signs and assesses pavement quality.

Research synthesis: AI tools help policymakers quickly access evolving best practices and evidence-based approaches. Overton’s AI platform, for example, allows policymakers to identify how existing evidence aligns with priority areas, compare policy approaches across states and nations, and match with relevant researchers and projects.

Implementation monitoring: AI fills critical gaps in program evaluation without major new investments. California’s transportation department analyzes traffic patterns to optimize highway safety and inform infrastructure investments.

Predictive modeling: AI-enabled models help test assumptions about which interventions will succeed. These models use features such as organizational characteristics, physical and contextual factors, and historical implementation data to predict success of policy interventions, and their outputs can help tailor interventions and improve outcomes and success. Applications include targeting health interventions to patients with modifiable risk factors, identifying lead service lines in municipal water systems, predicting flood response needs and flagging households at eviction risk.

Scaling up to wider adoption in policy and practice requires proactive steps by state and local governments and attendant guidance, monitoring and evaluation:

Adaptive policy framework: AI adoption often outpaces planning, and the definition of AI is often specific to its application. States need to define AI applications by sector (health, transportation, etc.) and develop adaptive operating strategies to guide and assess its impact. Thirty states have some guidance, but comprehensive approaches require clear definitions and inventories of current use.

Funding strategies: Policymakers must identify and leverage funding streams to cover the costs of procurement and training. Federal grants like the State and Local Cybersecurity Grant Program offer potential, though current authorization expires this Sept. 30. Massachusetts’ FutureTech Act exemplifies direct state investment, authorizing $1.23 billion for IT capital projects including AI.

Smart procurement: Effective AI procurement requires partnerships with vendors and suppliers and between chief information officers and procurement specialists. Contracts must ensure ethical use, performance monitoring and continuous improvement, but few states have procurement language related to AI. Speed matters — AI purchases risk obsolescence during lengthy procurement cycles.

Training and workforce development: Both current and future state and local government workforces need AI skills. Solutions include AI training academies and literacy programs for government workers, joint training programs between professional associations, and the General Services Administration’s AI Community of Practice‘s events and training. The Partnership for Public Service has recently opened up its AI Government Leadership program to state and local policymakers. Universities including Stanford and Michigan offer specialized programs for policymakers. Graduate programs in public policy, administration and law should incorporate AI governance tracks.

State AI policy development involves governor’s offices, chief information offices, security offices and legislatures. But success requires moving beyond pilot projects to systematic implementation. Governments that embrace this transition will be best positioned for future challenges. The opportunity exists now to set standards for AI-enabled governance, but it requires proactive steps in policy development, funding, procurement, workforce development and safeguards.

Joie Acosta is a senior behavioral scientist and the Global Scholar in Translation at RAND, a nonprofit, nonpartisan research institute. Sara Hughes is a senior policy researcher and the Global Scholar of Implementation at RAND and a professor of policy analysis at the RAND School of Public Policy.


Governing’s opinion columns reflect the views of their authors and not necessarily those of Governing’s editors or management.





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AI-powered search engine to help Singapore lawyers with legal research

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SINGAPORE – An artificial intelligence (AI)-powered search engine is expected to accelerate legal research and free up time for more than three quarters of all lawyers working in Singapore who subscribe to legal research platform LawNet.

Developed in collaboration with the Singapore Academy of Law, this new tool allows lawyers to ask legal research questions in natural language and receive contextual, relevant responses.

It is trained on Singapore’s legal context and supported by data such as judgments, Singapore Law Reports, legislation and books.

GPT-Legal Q&A, which has been rolled out on LawNet, was launched by Justice Kwek Mean Luck on the second day of the TechLaw.Fest on Sept 11 at the Sands Expo and Convention Centre.

The earlier GPT-Legal model launched in 2024 provided summaries of unreported court judgments, and has since been used to generate more than 15,000 of them.

“This is a game-changing feature. This new function enables lawyers to ask legal research questions in natural language, and receive contextual, relevant responses, which are generated by AI grounded in LawNet’s content,” said Justice Kwek.

“It is designed to complement traditional keyword-based search by offering a more intuitive and responsive research experience.”

For a start, the feature is focused on delivering insights on contract law, as it is a fundamental area of law that underpins many specialised fields.

“This is a significant undertaking. It involves extensive development and rigorous testing, to align technology to the demands of your work. As such, we will be rolling out this implementation in phases,” said Justice Kwek.

The model will be improved to give insights into other significant areas of law like family law and criminal law.

The Infocomm Media Development Authority has also developed an agentic AI demonstrator for the Singapore Academy of Law to help corporate secretaries arrange annual general meetings (AGMs).

Agentic AI can help to perform tasks without the need for human intervention.

The AI agent can automate tasks like looking through the schedules of directors to find a time slot for AGMs.

With the AI agent offering routine corporate secretarial duties autonomously, professionals will be freed up to focus on higher-value advisory and strategic tasks.

Source: The Straits Times © SPH Media Limited. Permission required for reproduction

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