AI in Financial Services: Intelligence That Unlocks Value

Financial Services

July 14, 2025

Introduction

AI in financial services is revolutionizing the industry by emulating human cognitive functions such as data analysis, pattern recognition, and decision-making support. Artificial intelligence in financial services is having a profound impact, driving transformative changes in fraud detection, customer service, due diligence, report and summary preparation, risk management, and financial forecasting. Financial institutions are increasing their adoption of AI to enhance efficiency, improve accuracy, and explore innovative new ways to serve clients and manage risk.

The Current State of AI in Financial Services

A recent report highlights the rapid rise in AI adoption within the financial sector, showing a significant leap from 45% in 2022 to an estimated 85% in 2025. Financial services organizations are prioritizing the automation of high-frequency, repetitive tasks by integrating technologies such as machine learning (ML), deep learning (DL), and natural language processing (NLP). AI for financial services is being utilized to accelerate workflows, automate manual tasks, and streamline the analysis of unstructured data, thereby enhancing operational efficiency.

Strategic Applications of AI in Financial Services

As one of the earliest adopters of AI, the financial sector has extensively explored its potential across various business functions to drive efficiency and innovation. Below are some use cases, showcasing the transformative impact of AI on financial services.

  • Customer Engagement and Support
    Client interactions in the financial sector have been transformed by conversational AI, agentic AI, and chatbots that enable round-the-clock, efficient customer support, reducing friction for institutions while enhancing client experience.
  • Document Analysis and Summarization
    AI helps analysts sift through the vast amounts of documents involved in due diligence, research, and risk identification exercises. The effectiveness of AI is higher when these documents are unstructured, like scanned copies of handwritten contracts or old documents.
  • Financial Forecasting and Strategic Analysis
    Forecasting plays a critical role in planning and analysis across the financial services sector. By leveraging AI to analyze historical data and follow a decision tree, organizations have accelerated the process of arriving at the first hypothesis for the problem statement. This hypothesis is then validated using more data and human intervention to make accurate predictions that drive operational efficiency and strategic alignment.
  • Fraud Detection and Risk Management
    AI has become a cornerstone in fraud detection and risk mitigation within the financial industry. By continuously monitoring and analyzing customer behavior, AI-powered algorithms can identify anomalies and flag suspicious activities, thereby effectively addressing potential risks.
  • Regulatory Compliance
    The integration of AI-powered tools for automated reporting enables institutions to identify and report suspicious activities to regulators, ensure adherence to compliance standards, and align their operations seamlessly with regulatory requirements. AI is also used to ensure the reported data is accurate, thereby avoiding penalties for non-compliance.

The Role of Generative AI in Financial Sectors

Generative AI is making significant strides in the financial services sector by enhancing operational efficiency across various applications, paving the way for a more innovative and responsive industry. Here’s how it is transforming key areas:

Automated Insights and Reporting

While we discussed the role of traditional AI in documentation— which focuses on extracting and summarizing information—in the previous section, generative AI goes a step further by automating the analysis of vast amounts of financial documents and synthesizing this data into narrative-driven, contextually rich reports. These reports can include detailed insights, trend analyses, and actionable recommendations, often mimicking professional writing styles. For example, generative AI can analyze financial performance data and produce a polished quarterly report explaining trends, forecasts, and strategic suggestions. This capability is particularly valuable for creating client-ready documents or internal reports that require a high degree of professionalism and contextual understanding.

Financial Advisory

Generative AI in financial services is revolutionizing how institutions provide personalized advice to clients. These AI systems can analyze historical financial data and market trends to generate tailored investment strategies and forecasts, helping clients make informed decisions. For example, GenAI-driven platforms can assist advisors in synthesizing complex information, thereby enhancing the quality of client interactions and improving engagement. Robo-advisors that leverage GenAI allow for more efficient client management and broader access to financial advice, democratizing financial planning.

Intelligent Virtual Assistants

Generative AI in financial services is also revolutionizing customer interactions by powering intelligent chatbots and virtual assistants that provide real-time, personalized assistance. Unlike traditional conversational AI, which may rely on scripted responses, generative AI enables these systems to understand complex queries and generate contextually relevant answers. This capability allows financial institutions to offer 24/7 support, significantly improving customer satisfaction and operational efficiency. By leveraging natural language processing and advanced data analytics, including sentiment analysis, generative AI can analyze customer interactions to provide tailored financial advice, detect transaction anomalies, and even simulate conversations that guide users through complex financial decisions. This enhances the customer experience and reduces operational costs by automating routine inquiries and allowing human agents to focus on more complex issues.

Overcoming Challenges in AI Adoption

While the advantages of AI in financial services are evident, its adoption is not without challenges. Some of the key obstacles include:

  • Data Privacy and Security
    Safeguarding sensitive financial information is paramount, requiring stringent security protocols and adherence to regulatory standards.
  • Integration with Legacy Systems
    Many financial institutions struggle to incorporate AI technologies into their outdated infrastructure, making seamless integration a significant hurdle.
  • Skill Gaps
    The lack of skilled professionals capable of developing, deploying, and managing AI systems is a major challenge to widespread AI adoption in financial services.
  • Regulatory Concerns
    Implementing AI solutions while navigating complex and evolving regulatory frameworks demands meticulous planning and execution.

To address these challenges, financial institutions are focusing on upskilling their workforce, forming partnerships with technology providers, and establishing robust data governance frameworks.

Agentic AI: The Next Frontier

This cutting-edge technology represents the latest and most sophisticated integration of AI with large language models (LLMs). Unlike conventional AI, agentic AI can analyze data, establish goals based on that analysis, and take appropriate actions with minimal human involvement. Agentic AI in financial services has myriad potential for application, including data gathering and analysis, customer onboarding, automated portfolio management, risk assessment, fraud detection, and more. With its adaptive problem-solving and decision-making abilities, agentic AI for financial services has the potential to revolutionize institutional operations.

Some of the key application areas for agentic AI in financial services include:

Onboarding and Due Diligence

  • Personalized onboarding
  • Compliance checklist generation

Learn more about Hexaware’s Digital Client Onboarding Solution for Wealth Management

Product Development and Operations

  • Portfolio manager assistant
  • Automated reconciliation of workflows
  • Intelligent email and document management

Client Acquisition and Servicing

  • Outreach strategy recommendations
  • Smart account planning

Portfolio and Risk Management

  • Personalized chatbots
  • Advisor assistant
  • Automated risk assessment

Hexaware Case Studies: Success Stories of AI in Financial Services

From reimagining customer experiences and enhancing productivity to reducing costs, Hexaware has helped numerous financial institutions leverage AI to create business impact. Here are some examples:

GenAI-powered Financial Advisory Assistant for a Major Private Equity Firm

Key Features

  • Developed a GenAI-powered assistant application with an intuitive interface to support complex market analysis and investor targeting
  • Leveraged Azure and OpenAI technologies to integrate diverse data sources
  • Delivered actionable insights and strategic guidance to address the critical needs of fundraising in private markets

Benefits

  • 40% reduction in time spent on data integration
  • 30% improved investor engagement conversations

Knowledge Transition for Onboarding and Training for a Global Private Equity Firm

Key Features

  • Developed training videos directly from uploaded documents
  • Automatically converted textual content into professional PowerPoint presentations
  • Generated high-quality audio narration to accompany the presentations
  • Created training videos by synchronizing audio with PowerPoint slides using generative AI
  • Conducted regular quizzes to assess understanding, using AI-generated questions and answers
  • Maintained a centralized repository of knowledge articles for easy access and reference

Benefits

  • 30–50% effort savings in the preparation of training material
  • Up to 30% faster onboarding
  • Continuous skill enhancement through ongoing assessments

Reimagination of Internal Inquiry Systems for a US Secondary Mortgage Enterprise

Key Features

  • Provided precise and accurate responses to lender queries
  • Used vector databases to index and retrieve information from documents
  • Ensured controlled access for lenders and servicers through a rights-managed system
  • Improved data protection with an additional level of security embedded in the guardrail system
  • Monitored system usage through token tracking, audit trails, and interactive dashboards

Benefits

  • 30% reduction in agents’ manual efforts
  • $5M per year savings in productivity and cost
  • Accurate, authentic, and near real-time response

How Hexaware Can Help

Hexaware is a trusted partner for financial institutions looking to leverage AI. With expertise in AI-driven solutions, we help financial organizations, including wealth managers, asset managers and servicers, insurers, and mortgage companies, overcome adoption challenges, integrate advanced technologies, and achieve their strategic objectives. Whether it’s implementing generative AI, enhancing customer experiences, or optimizing operations, Hexaware tailored IT solutions for financial services help drive innovation and success in the financial sector.

Our expertise spans the deployment of AI-driven data management, analytics for data-driven investment decisions, fraud detection, and risk management, as well as the automation of front-to-back-office processes to reduce operational costs and improve compliance. Hexaware’s generative AI solutions enable financial organizations to accelerate financial planning, automate report generation, and deliver highly personalized customer experiences through intelligent chatbots and virtual assistants.

By leveraging our advanced AI toolkits and cloud-based platforms, financial institutions can modernize legacy systems, enhance predictive analytics, and create adaptive, future-ready business models. Whether you’re looking to streamline customer service, optimize workflows, or harness strategic insights, our AI-first approach provides the expertise and technology to help you lead in the digital financial era.

Ready to reimagine what’s possible in finance? Let’s create your AI advantage—contact us at marketing@hexaware.com.

About the Author

Sathish Thiruvenkataswamy

Sathish Thiruvenkataswamy

Senior Vice-president, Financial Services

Sathish Thiruvenkataswamy brings over 23 years of experience in IT services, working with leading global information technology firms. Sathish specialises in the financial services domain and has delivered large transformational programs and consulting services to global banks, financial institutions, brokerages, exchanges, custodians, etc. He has been instrumental in establishing domain-focused practices in the banking and financial services sector that deliver industry-specific offerings, consulting, and thought leadership to customers' businesses. Sathish is currently focused on developing GenAI and agentic AI use cases in partnership with leading technology firms to reimagine business processes in financial services.

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FAQs

Implementing AI in finance typically requires robust data infrastructure, scalable cloud computing resources, secure data storage, and integration with existing core banking or financial systems to support advanced analytics and machine learning models.

AI enhances customer experience by enabling personalized recommendations, 24/7 intelligent virtual assistants, faster query resolution, and seamless digital onboarding, all of which make financial services more responsive and user-friendly.

Key regulatory concerns include ensuring data privacy and security, maintaining transparency and explainability of AI-driven decisions, and complying with evolving industry standards and legal frameworks to prevent bias and protect consumers.

AI reduces costs by automating repetitive manual tasks, streamlining operations, minimizing errors, and enabling more efficient risk management and fraud detection, collectively lowering operational expenses.

The future of AI in financial services is highly promising, with continued advancements expected to drive greater automation, smarter decision-making, and innovative new products, positioning AI as a core enabler of growth and competitive advantage in the industry.

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