AI/ ML Engineer

5 years

0 Lacs

Posted:3 days ago| Platform: Linkedin logo

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Work Mode

On-site

Job Type

Full Time

Job Description

Urgently Hiring for AI/ML Role


We are seeking an experienced AI/ML Engineer with 3–5 years of hands-on experience in building and deploying machine learning solutions in the fintech and spend management domain. You will work on real-time forecasting, intelligent document processing (invoices/receipts), fraud detection, and other AI-powered features that enhance our finance intelligence platform. This role demands expertise in both time series forecasting and computer vision, as well as a solid understanding of how ML applies to enterprise finance operations.


Key Responsibilities:

  • Design, train, and deploy ML models for spend forecasting, budget prediction, expense categorization, and risk scoring.
  • Build and optimize OCR-based invoice and receipt parsing systems using computer vision and NLP techniques.
  • Implement time-series models (Prophet, ARIMA, LSTM, XGBoost, etc.) for forecasting trends in financial transactions, expenses, and vendor payments.
  • Work on intelligent document classification, key-value extraction, and line-item detection from unstructured financial documents (PDFs, scanned images).
  • Collaborate with product and finance teams to define high-impact AI use cases and deliver business-ready solutions.
  • Integrate ML pipelines into production using scalable tools and platforms (Docker, CI/CD, cloud services).
  • Monitor model performance post-deployment, conduct drift analysis, and implement retraining strategies.


Required Skills & Qualifications:

Core Machine Learning

  • Strong knowledge of supervised and unsupervised ML techniques applied to structured and semi-structured financial data
  • Experience in time-series analysis and forecasting algorithms such as:

ARIMA, SARIMA

Facebook Prophet

XGBoost for regression

LSTM / GRU models for sequential data

  • Proficiency in Python and key libraries: scikit-learn, Pandas, NumPy, StatsModels, PyTorch, TensorFlow.


Computer Vision & Document AI

  • Hands-on experience with OCR tools such as Tesseract, Google Vision API, or AWS Textract.
  • Knowledge of document layout analysis and field-level extraction using OpenCV, LayoutLM, or Google Document AI.
  • Familiarity with annotation tools (Label Studio, CVAT) and post-processing OCR outputs for structured data extraction.


Deployment & Engineering

  • Experience in exposing ML models via Flask or FastAPI.
  •  Model packaging and deployment with Docker, version control with Git, and ML lifecycle tools like MLflow or DVC.
  • Working knowledge of cloud platforms (AWS/GCP/Azure) and integrating models with backend microservices.


Data & Domain

  • Understanding of financial documents: invoices, receipts, expense reports, and GL data.
  • Ability to work with tabular, image-based, and PDF-based financial datasets.
  •  SQL proficiency and familiarity with financial databases or ERP systems is a plus.



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