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How a Leading Finance Firm Transformed AI Delivery with NexML

In today’s financial landscape, having a machine learning model isn’t enough — institutions need AI systems that are explainable, compliant, and production-ready at scale. To address this need, we partnered with a leading financial services firm to develop NexML — an end-to-end AutoML and MLOps solution designed specifically for the high-stakes, high-regulation environment of […]
  • category
    Category

    Finance

  • services
    Services

    Auto ML & ML Ops

  • date
    Date

    02 Feb, 2025

  • location
    Location

    India

How a Leading Finance Firm Transformed AI Delivery with NexML

3 days

deployment time reduced from

100%

of production models now tracked in real-time

60%

reduced audit reporting time

Introduction

In today’s financial landscape, having a machine learning model isn’t enough — institutions need AI systems that are explainable, compliant, and production-ready at scale.

To address this need, we partnered with a leading financial services firm to develop NexML — an end-to-end AutoML and MLOps solution designed specifically for the high-stakes, high-regulation environment of finance.

NexML was built to accelerate model deployment, ensure continuous monitoring, and align tightly with compliance frameworks. The goal: eliminate AI delivery bottlenecks and help the institution turn insights into intelligent, real-time decisions.

Challenges

Despite significant investment in data science talent and infrastructure, the client faced major roadblocks in operationalizing AI:

  • Slow ML Deployment Cycles

    Model development was manual, time-consuming, and lacked standardization.

  • Lack of Continuous Monitoring

    Once deployed, models operated in a “set and forget” mode, with no live performance tracking or drift alerts.

  • Regulatory Blind Spots

    Compliance teams lacked access to explainable models and end-to-end audit trails.

  • Limited Collaboration

    Silos between data science, IT, and business units led to inconsistent model governance and handoff issues.

The result? Valuable models remained underutilized, and the business couldn’t respond fast enough to market or regulatory shifts.

Solution

To address these challenges, we designed and deployed NexML — a modular AutoML + MLOps framework tailored for the financial sector.

Key components of the solution included:

  • AutoML Engine

    Enabled automated feature engineering, model selection, and tuning using pre-configured financial use-case templates — reducing development time by over 70%.

  • CI/CD for Machine Learning

    Introduced GitOps-style pipelines that triggered automated testing, deployment, and rollback of models — aligned with existing DevSecOps processes.

  • Model Registry & Version Control

    Every model version was logged, tracked, and approved via a centralized registry — ensuring traceability and approval workflows across teams.

  • Integrated Explainability & Audit Trail

    NexML integrated explainable AI (SHAP, LIME) for transparent predictions and auto-generated documentation to support regulatory audits.

  • Domain-Centric Use Case Layer

    Delivered out-of-the-box support for key financial applications: credit risk scoring, fraud detection, churn prediction, and customer segmentation.

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