Entry Requirements
Duration: 1 Months
Delivery Method: Online
Fee Structure
Full Course Fees | |
---|---|
Registration Fee | KES 1,000.00 ($ 10.00) |
Certification Fee | KES 0.00 ($ 0.00) |
Administration Fee | KES 5,000.00 ($ 50.00) |
Internal Exam Fee | KES 5,000.00 ($ 50.00) |
External Exam Fee | KES 0.00 ($ 0.00) |
Examining Body Membership Fee * | KES 0.00 ($ 0.00) |
Tuition Fee | KES 10,000.00 ($ 100.00) |
Fees Totals | KES 21,000.00 ($ 210.00) |
* Examining Body Membership Fee may be payable through us or directly to the Examining Body |
All Fees are payable in lumpusm or in installments, for details see below.
Breakdown per semester,
Trimester | Total Per Trimester |
---|---|
Trimester 1 | KES 21,000.00 ($ 210.00) |
Total | KES 21,000.00 ($ 210.00) |
NB: Fees are payable in 3 installments as detailed below:
The trimester fees of KES 21,000.00 ($ 210.00) is payable in 3 installments of KES 7,000.00 ($ 70.00)
Course Requirements
All Fees are payable in installements, for details check FAQ
Practical Requirements (where applicable)
For courses that require practicals, a separate fee is chargable (not included in fee structure above) as follows:
- Short courses - KES 5,000
- Certificate courses - KES 7,500
- Diploma courses - KES 10,000
Course Units/Overview
Data Scince & AI for Credit Department in Financial Institutions
Unit ID | Unit Name |
---|---|
DCDFI001 | Data Scince & AI For Credit Department In Financial Institutions |
Course Description
Data Science & AI for Credit Department in Financial Institutions
Course overview
Certificate in Data Science & Artificial Intelligence for Credit Departments in Financial Institutions is a 1-month online program meticulously designed to empower credit professionals with the skills to harness data and AI technologies for smarter, faster, and more accurate credit decision-making. This course is ideal for individuals working in banking, microfinance, SACCOs, and fintech who want to strengthen their capabilities in credit scoring, risk analysis, and loan automation using cutting-edge tools. The course is examined by Finstock Evarsity College, and upon successful completion, students are awarded a certificate of achievement.
This program introduces learners to the core principles of data science, machine learning, and artificial intelligence, specifically applied within the credit lifecycle—from loan origination and underwriting to monitoring and collections. Learners will explore key techniques such as predictive modeling, customer segmentation, anomaly detection, and NLP (Natural Language Processing) for document automation and credit profile analysis.
The course blends theoretical foundations with hands-on projects, case studies from financial institutions, and simulation exercises. By the end of the course, students will be capable of developing AI-driven credit evaluation systems, generating real-time credit dashboards, and applying ethical AI principles within financial environments.
Finstock Evarsity College’s flexible e-learning environment supports professionals seeking to upskill while managing work and life responsibilities. This course is ideal for credit officers, loan analysts, fintech innovators, data enthusiasts, and finance managers looking to gain a competitive edge through technology-driven credit solutions.
What is the minimum grade required to do a Data Science & AI for Credit Department in Financial Institutions?
In order to enroll and study for the Data Science & AI for Credit Department in Financial Institutions you are required to have a C-.
Mode of Delivery
Home and/or office-based media employing a variety of self-instructional electronic and online self-study materials, such as; written self-instructional study modules, online interactive devices and self-tests, cloud-based content, videos of lectures mediated technical learning materials e.g., audiovisual and e-learning materials
Career Opportunities
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Credit Risk Analyst
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Machine Learning Engineer
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Data Scientist
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AI Specialist – Lending Systems
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Fraud Detection Analyst
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Credit Scoring Model Developer
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Business Intelligence (BI) Analyst – Credit Operations
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Data Engineer – Financial Services
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Loan Portfolio Analyst
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AI Compliance & Ethics Analyst
Programme Goals
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Understand the Role of Data Science in Credit Management – Provide foundational knowledge of how data science supports credit analysis, risk assessment, and decision-making.
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Apply Machine Learning in Credit Scoring Models – Train students to design, implement, and evaluate AI models for accurate and dynamic credit scoring.
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Enhance Skills in Data Collection and Preprocessing – Equip learners with techniques to gather, clean, and transform financial and customer data for modeling purposes.
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Gain Proficiency in Predictive Analytics for Credit Risk – Teach the use of statistical and AI tools to predict loan defaults, payment behaviors, and portfolio performance.
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Utilize AI for Fraud Detection and Prevention – Develop capabilities to detect anomalies and suspicious patterns in credit transactions using AI algorithms.
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Understand Regulatory Compliance and Ethical Use of AI – Ensure students are aware of legal frameworks like GDPR, fair lending laws, and the ethical implications of automated decision-making.
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Leverage Natural Language Processing (NLP) in Credit Evaluation – Introduce NLP techniques for analyzing unstructured data such as customer feedback, credit reports, and social media content.
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Integrate AI with Credit Risk Management Systems – Provide knowledge on embedding AI models into real-time credit systems and loan management platforms.
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Foster Data-Driven Decision-Making Culture – Encourage a shift from intuition-based to evidence-based credit policies through data visualization and dashboards.
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Prepare for Specialized Roles in Fintech and Banking – Equip learners with job-ready skills for roles such as credit data analyst, AI risk officer, and financial data scientist in modern financial institutions.
Reasons to study
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Improved Credit Risk Assessment – Learn how to use AI models and data analytics to accurately evaluate borrower risk and predict defaults.
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Enhanced Decision-Making – Data-driven insights enable faster and more informed credit approvals, reducing reliance on manual judgment.
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Fraud Detection and Prevention – Use machine learning algorithms to detect unusual patterns and prevent fraudulent loan applications.
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Personalized Credit Products – Apply AI to segment customers and tailor credit offers based on individual financial behavior and risk profiles.
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Operational Efficiency – Automate routine credit processing tasks, reducing turnaround times and increasing productivity.
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Regulatory Compliance – Learn how data analytics can support adherence to financial regulations through transparent, auditable decision models.
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Real-Time Monitoring – AI systems allow real-time monitoring of credit portfolios for early warning signals and dynamic risk management.
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Competitive Advantage – Equip your institution with cutting-edge tools to stay ahead of competitors in offering faster, smarter credit solutions.
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Cost Reduction – Streamline operations and reduce overhead costs through automation and predictive analytics.
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Enhanced Customer Experience – Faster approvals and more accurate risk assessments lead to improved trust and satisfaction among clients.
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Forecasting and Trend Analysis – Use data science to forecast market changes, credit demand, and economic conditions impacting lending decisions.
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Global Best Practices – Learn from international trends in AI-driven credit scoring and risk modeling used by leading financial institutions.
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Career Advancement – Gain high-value technical and analytical skills increasingly required in modern finance and fintech roles.
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Foundation for Further Innovation – Prepares professionals to integrate advanced technologies like blockchain, open banking, and alternative data into credit systems.
What we offer
Finstock Evarsity College offers a wide range of courses that are geared towards job creation as well as employment. Our courses and product offerings are categorized as online college based, degree programs, freemium courses and premium resources
Both freemium and premium online courses come with certificates of completion and you can register instantly and begin studying at your convenience.
Enroll and study in one of the best online Data Science & AI for Credit Department in Financial Institutions in the world. Listen to the advice of the best. Participate in training sessions with industry experts to learn more about your career options. Take classes with students from all over the world. Join us at Finstock Evarsity College for the best learning experience.
Tags
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Course Instructor(s)


Examining Body
FINSTOCK EVARSITY COLLEGE
FAQs
Q1. How many intakes are there?
There are three intakes in a year as follows:
Cohort |
Name |
Term Period |
Months |
Registration Window |
January Intake |
Trimester 1 |
Jan 1 — Apr 30 |
4 |
Anytime |
May Intake |
Trimester 2 |
May 1 — Aug 31 |
4 |
Anytime |
September Intake |
Trimester 3 |
Sep 1 — Dec 31 |
4 |
Anytime |
Q2. In how many installments can I pay the fees?
Payments can be done in 3 installments as specified in the fee structure.
Q3. When can I sit for the exams?
- Internal exams are activated for students individually.
- External exams (where applicable) are booked one month after you complete the course.
Refer to the external examining body for more details and requirements before seating for their exams.
Q4: Is this college accredited/approved?
Yes. The college is approved under the ministry of education, through TVETA, and also through National Industrial Training Authority (NITA).
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