Artificial Intelligence (AI) Managed Services

Speed into the future with AI, transform how your business operates and outpace your competition.

As Artificial Intelligence (AI) becomes intrinsic to every facet of your business and companies increasingly look to drive innovation and streamline operations, you face an array of challenges. Speed in AI adoption is paramount, and innovation remains the ultimate differentiator. Many organizations struggle to effectively integrate AI into existing business processes, risking suboptimal outcomes. To remain competitive in a fast-paced digital environment, you need to not only integrate AI, but do it fast and with a focus on innovation and breakthrough advancements.

PwC’s AI Managed Services can help you meet these challenges head-on. We offer cost-effective solutions designed to boost operational efficiency, reduce complexity and enhance decision-making. Our strategic approach is backed by deep industry experience, helping you quickly scale AI initiatives responsibly while optimizing costs. With PwC, you can harness AI’s transformative potential to make better-informed decisions faster, unlock new growth opportunities and stay ahead in an ever-evolving market landscape.

We have broad AI capabilities—integrated with strategic alliances with leaders in this space—to help speed your critical tech innovation.

How PwC can help

Generative AI

  • Speed to innovation and create more value with AI-driven content generation using our maintained library of data and code.
  • With fine-tuning and monitoring, we can help keep your generative AI aligned with your evolving business objectives.
  • Operate quickly by tapping our deep firsthand experience using AI to identify and address key use cases, build repeatable agents and help upskill teams.

Cognitive AI

  • Empower smarter decisions with tailored insights and recommendations from AI.
  • By leveraging strong data sources and continuous enhancements, we help your organization’s cognitive AI stay responsive to business dynamics and strategic priorities.

Analytical AI

  • Leverage the power of AI-driven data analysis to uncover meaningful insights.
  • Our solutions are designed to deliver relevant, timely intelligence that aligns with your business priorities and evolves alongside your organization’s needs.

Our approach

Operations: Operate. Monitor. Support.

  • Fast, responsive AI operations are critical to staying ahead. Proactive monitoring helps AI systems operate smoothly by identifying and addressing issues before they impact performance. Leveraging observability and telemetry tools, this approach provides real-time insights into system health, reducing downtime and improving reliability. It also enables continuous system optimization, with AI applications that meet your evolving business needs.
  • Holistic support focuses on maintaining the functionality and reliability of AI systems through end-to-end assistance. From troubleshooting to routine updates, it provides businesses with the resources to resolve issues efficiently. This support enables consistent performance and delivers a seamless user experience for your AI-driven solutions.
  • Operational excellence emphasizes industry-leading practices in AI system operations, combining process governance, risk management, and quality oversight. It enables AI models and data pipelines to be dependable, scalable, and aligned with organizational goals. This fosters long-term value and adaptability across AI initiatives.
  • Scalability and adaptability help AI systems grow with your business, meeting increasing demands while maintaining performance. Through advanced model management and flexible architectures, AI solutions can evolve to address new challenges and opportunities. This approach helps AI systems become future-proof and aligned with strategic objectives.

Engineering: Extend. Enhance. Scale.

  • AI-driven automation should be fast, adaptable, and innovation-led. By leveraging intelligent agentic workflows, this approach enhances operational efficiency and reduces manual intervention. It empowers your organization to streamline processes, improve productivity and quickly achieve consistent results.
  • Model management involves the lifecycle maintenance of AI models, including version control, deployment, and retirement. This helps models remain thorough, effective and aligned with changing data and business requirements. By managing models effectively, your organization can maintain high-performance AI systems over time.
  • Data pipelines, the backbone of AI engineering, enable seamless data flow from collection to processing and storage. Well-designed pipelines provide high-quality, reliable and accessible data for model training and deployment. This can lead to faster and better decision-making in AI applications.
  • Model validation helps make your AI models reliable and meet predefined performance standards. This process involves testing models against benchmarks and real-world scenarios to affirm their resilience. Proper validation mitigates risks and enhances trust in AI solutions.
  • Visualization focuses on presenting AI insights in clear and intuitive formats, empowering stakeholders to understand and act on data-driven findings. Dashboards, charts and other visual tools translate complex results into actionable intelligence. Effective visualization can enhance your decision-making and promotes transparency.
  • Data quality is critical for the success of AI systems. This involves cleaning, transforming, and validating data to eliminate errors, inconsistencies, and biases. High-quality data drives more accurate model outcomes and strengthens the overall reliability of AI solutions.

Governance: Govern. Align. Comply.

  • AI governance provides a structured framework to oversee the development, deployment and use of AI systems. Our framework can help you deploy responsible AI faster and helps AI initiatives adhere to principles, organizational policies and regulatory standards. This approach promotes accountability, fairness, and transparency, fostering trust in AI solutions.
  • AI change management focuses on guiding organizations through the adoption and implementation of AI technologies. This includes managing the impact of AI on existing workflows, addressing resistance to change and enabling seamless integration. Effective change management enables smoother transitions and increases the benefits of AI.
  • AI risk and compliance involves identifying, assessing and mitigating potential risks associated with AI systems. This includes compliance with data privacy regulations, standards and industry guidelines. Proactive risk management safeguards organizations against legal, reputational and operational challenges.
  • AI reliability and explainability focuses on creating systems that are resilient, consistent and interpretable. Reliability enables AI systems to perform as expected under various conditions, while explainability makes AI decisions understandable to stakeholders. These elements are critical for building trust and enabling informed decision-making.

We focus on addressing your biggest challenges

  • Lack of in-house experience: Many organizations struggle with the technical complexity of AI systems, including model development, deployment and management. Our managed services help bridge the talent gap by providing access to skilled AI professionals.
  • Scalability Issues: As businesses scale, managing large AI systems and data pipelines becomes increasingly challenging. Managed AI services offer flexible solutions that can adapt to growing organizational needs.
  • High costs of building AI capabilities: Developing in-house AI infrastructure, tools and teams requires significant investment. Outsourcing reduces upfront costs by leveraging existing managed services.
  • Data quality and governance: Maintaining data quality, accuracy and compliance can be complex. Managed services streamline these tasks with thorough governance frameworks and data management practices.
  • Operational complexity: Running and monitoring AI systems, including proactive monitoring, observability and telemetry, can overwhelm internal teams. Managed services enable continuous operational excellence and support.
  • Risk and compliance challenges: Navigating regulatory requirements, standards and compliance concerns is difficult without specialized knowledge. Managed services helps your organization adhere to legal standards.
  • Reliability and explainability: Building trust in AI systems requires explainability and reliability, which are complex to achieve. Managed services can enhance model reliability and provide explainable solutions to meet business needs.
  • Time constraints for implementation: Developing and deploying AI solutions internally can take significant time, delaying benefits. Managed services enable faster deployment and quicker realization of ROI.
  • Resource limitations for ongoing support: Organizations often lack the resources for round-the-clock monitoring and support. Managed services provide a broad level of assistance, reducing downtime and improving performance.
  • Managing AI change: Adopting AI technologies requires careful change management to help prevent disruption to existing workflows. Managed services provide structured assistance for seamless integration and adoption.

Our key benefits

PwC’s AI Managed Services help your business accelerate AI adoption and innovation by providing skills, capabilities and infrastructure to:

  • Deploy AI solutions faster and unlock new business possibilities
  • Acquire specialized AI talent in a cost-effective manner through strategic sourcing
  • Maintain and streamline complex AI solutions
  • Provide round-the-clock help with AI operations and ecosystems
  • Harness advanced insights and enable automated decision-making to deliver actionable business value

Contact us

Rani Radhakrishnan

Principal, Technology Managed Services - AI, Data Analytics and Insights, PwC US

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