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Prädiktive Analytik

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Overview

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Learning outcomes

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Course content

1

Grundlagen Der Vorhersagemodelle

2

Datenaufbereitung Für Predictive Analytics

3

Feature Engineering Und Auswahl

4

Modellbewertung Und -Optimierung

5

Einsatz Von Predictive Analytics In Unternehmen

Career Path

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Key facts

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Why this course

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This self-paced approach allows you to begin your professional development journey immediately, fitting your learning around your existing commitments.

We offer two flexible learning paths to suit your schedule:

  • Fast Track: Complete in 1 month with 3-4 hours of study per week
  • Standard Mode: Complete in 2 months with 2-3 hours of study per week

You can progress at your own pace and access the materials 24/7.

There are no formal entry requirements for this course. You just need:

  • A good command of English language
  • Access to a computer/laptop with internet
  • Basic computer skills
  • Dedication to complete the course
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Assessment is done through:

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  • You need to score at least 60% to pass each unit
  • You can retake quizzes if needed
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Upon successful completion, you will receive:

  • A digital certificate from London School of Business and Administration
  • Option to request a physical certificate
  • Transcript of completed units
  • Certification is included in the course fee
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Why people choose us for their career

Trusted by professionals worldwide

Verified outcomes from learners who finished the course and put it to work.

4.5
Based on 4 learner reviews · 4 countries
98%
Would recommend
100%
Verified learners
2026
Cohort active
Completed from United States
MC
Michael Carter
US · Course completed

The Prädiktive Analytik course at Stanmore School of Business precisely matched my learning objectives. The curriculum’s focus on linear regression, time‑series forecasting, and model validation gave me the confidence to build predictive models for my finance team. I especially appreciated the hands‑on Python notebooks that walked me through a real‑world sales‑demand case study; I was able to implement a ARIMA model that reduced forecast error by 12% in my own project. The lecture slides were clear, and the supplemental reading list featured up‑to‑date research papers. Overall, the course delivery was professional and the support from the instructors was prompt, making the experience highly satisfying.

SL
Sophie Laurent
CA · Course completed

I took the Prädiktive Analytik class because I wanted to add some data‑science chops to my marketing role, and it totally delivered. The vibe was relaxed but the content was solid – we got to play with real datasets from e‑commerce sites and learned how to use decision trees and logistic regression in R. One of the group projects had us predict customer churn, and I actually used that model at work and saw a 9% lift in retention. The course materials were easy to follow, with short videos and interactive quizzes that kept things interesting. All in all, a great mix of theory and practice that left me feeling confident about applying predictive analytics on the job.

FW
Felix Wagner
DE · Course completed

Wow! The Prädiktive Analytik program blew me away with its depth and relevance. From the moment we started, the instructors sparked excitement by showing how predictive models drive decisions in industries like healthcare and finance. I learned to engineer features, tune hyper‑parameters with GridSearchCV, and interpret model SHAP values – skills I instantly applied to a capstone project forecasting hospital readmission rates. The course material was top‑notch: crisp PDFs, real‑world case studies, and a well‑structured GitHub repo with all code. My confidence skyrocketed, and I’m now leading a new analytics initiative at my company. Absolutely thrilled with the experience!

RK
Rahul Kapoor
IN · Course completed

The Prädiktive Analytik course offered a meticulously detailed roadmap from data preprocessing to model deployment. Each module—starting with exploratory data analysis, moving through supervised learning techniques like random forests and gradient boosting, and concluding with model monitoring—was accompanied by comprehensive lecture notes, MATLAB scripts, and real‑world datasets (e.g., credit‑risk scoring). I particularly valued the weekly labs where we built a predictive maintenance model for manufacturing equipment, which I later showcased to my supervisor, resulting in a pilot project. The materials were up‑to‑date and aligned with industry standards, and the instructor’s feedback on assignments was thorough. The overall learning experience was rigorous yet supportive, and I left the course equipped with actionable analytics skills.





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Recently updated!

May 2026