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Tuka BadeTB

Tuka Bade

Supermalter

Python, Scikit-learn, Streamlit, SQL

€722/day
6 projects
Paris, FR
3-7 years

Average response time: 1 hour

Freelancer profile translated to English.
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About Tuka

Data (Business) Scientist Freelancer – Machine Learning & Automation


I help companies turn their data into actionable insights and scalable solutions.

My work focuses on two main areas:
➱ 𝐃𝐚𝐭𝐚 𝐒𝐜𝐱𝐞𝐧𝐜𝐞 & 𝐌𝐚𝐜𝐡𝐱𝐧𝐞 đ‹đžđšđ«đ§đąđ§đ : transforming raw data into predictive models and decision-support tools.
➱ 𝐃𝐚𝐭𝐚 đ„đ§đ đąđ§đžđžđ«đąđ§đ  & 𝐀𝐼𝐭𝐹𝐩𝐚𝐭𝐱𝐹𝐧: building robust pipelines and automating processes to save time and improve performance.

I also teach data science and machine learning, as empowering teams with the right skills fosters autonomy and lasting impact.

👉 If you want to leverage your data to drive growth, optimize your processes, and automate your workflows, let's discuss.

đ‚đšđŠđ©đžđ­đžđ§đœđąđžđŹ đœđ„Ă©đŹ

📊 𝐃𝐚𝐭𝐚 𝐒𝐜𝐱𝐞𝐧𝐜𝐞 & 𝐌𝐚𝐜𝐡𝐱𝐧𝐞 đ‹đžđšđ«đ§đąđ§đ 
➱ Exploratory data analysis & visualization
➱ Data collection & pipelines (APIs, scraping, ETL/ELT)
➱ Predictive modeling (supervised & unsupervised ML)
➱ Application development (Streamlit, FastAPI)

⚙ 𝐀𝐼𝐭𝐹𝐩𝐚𝐭𝐱𝐹𝐧 & đŽđ©đ­đąđŠđąđŹđšđ­đąđšđ§
➱ Growth, marketing & sales processes
➱ APIs (REST, GraphQL)
➱ ETL/ELT (Python, Cloud Functions)
➱ Low-code tools (n8n, Metabase)
➱ Cloud Solutions (GCP: BigQuery, Cloud Functions, Pub/Sub, Bucket, Scheduler)

🛠 đŽđźđ­đąđ„đŹ & đ“đžđœđĄđ§đšđ„đšđ đąđžđŹ
Scikit-learn | Python | SQL | GCP | Metabase | Streamlit | FastAPI | APIs | Statistics

đŸ“© Feel free to contact me if you want to explore how data can create value for your business.
  • English

    Native or bilingual

  • French

    Native or bilingual

Remote only
Primarily works remotely

Experience

  • Better & Stronger
    Data Scientist
    CONSULTING AND AUDITS
    February 2025 - September 2025 (7 months)
    Lyon, France
    👉 Project 1:
    Classification of visitors to a hotel booking website in order to analyse potential purchasers.

    🎯 Context:
    TraïŹƒc data from a hotel group’s website is collected and used to analyse user behaviour and optimise the site journey. For advertising purposes, the Marketing team leverages these data to build targeted ad audiences and promote the hotel’s oïŹ€erings. Classifying users therefore helps to understand distinct user segments and the common behaviours that drive them to purchase.


    ✅ Missions:
    ➀ Audited the existing classification model to determine why it failed to meet marketing requirements
    ➀ Analysed the dataset to demonstrate overfitting in the current model
    ➀ Advised the Data team on the scarcity of positive labels (58 million rows, only 0.00418% positive)
    ➀ Identified correlations between user events to isolate the most relevant features
    ➀ Built the first draft of the data pipeline, including data cleaning and splitting into training, test and production sets
    ➀ Retrained the existing Boosted Tree Classifier; trained Logistic Regression and Random Forest models
    ➀ Calculated feature importances and deployed the Random Forest model into production
    ➀ Presented findings and delivered workshops to both the Marketing and Data teams
    Python Machine Learning Pandas Scikit-learn Google Cloud Platform (GCP)
  • Better & Stronger
    Data Scientist
    CONSULTING AND AUDITS
    February 2025 - September 2025 (7 months)
    Lyon, France
    👉 Project 2:
    Categorisation of users’ purchase probabilities on the website using a clustering model.

    🎯 Context:
    Following on from the user classification project, the Marketing team wishes to categorise the probability segments as follows: very low purchase probability, low purchase probability, moderate purchase probability and high purchase probability. These segments will be used by the Marketing team to create personalised audiences to enhance the performance of their online advertising.

    ✅ Missions:
    ➀ Applied arbitrary marketing criteria to define audience segments
    ➀ Analysed the distribution of model-generated probabilities
    ➀ Employed a clustering model on the probability scores
    ➀ Delivered the resulting audience segments into a dedicated table
    ➀ Presented the audiences and accompanying analyses to the Marketing team
    Python Machine Learning Google Cloud Platform (GCP) Pandas Scikit-learn
  • ENDEL ENGIE
    Data Scientist
    ENERGY AND UTILITIES
    June 2025 - June 2025
    Paris, France
    👉 Project:
    Creation of a prompt engineering repository to automate content creation.

    🎯 Context:
    For ENGIE’s Legal Research & Development team, I created a knowledge base to enable the business unit to automate content creation, retrieval and verification. I also trained the team to use LLMs and techniques such as zero-shot, one-shot and few-shot learning.

    ✅ Missions:
    ➀ Define what AI is and where LLMs sit within the field of AI
    ➀ Explain how to maintain critical thinking when using an LLM
    ➀ Advise on how to use LLMs as a legal researcher
    ➀ Master techniques such as Chain-of-Thought, zero-shot, one-shot and few-shot learning
    ➀ Demonstrate and embed best technical practices within the team
    ➀ Explain how to detect biases in outputs and audit a prompt from its formulation to the responses obtained
    LLM Prompt Engineering Machine Learning Product Management Teaching

Reviews

5.0

Out of 3 ratings

S

Sliman

Plateforme de l'inclusion

Reviewed on 2/29/2024

Tuka quickly integrated into the team and our startup's agile organization. His contribution to data analysis is a major asset and a skill we needed.
MarinM

Marin

FUSE MEDIA

Reviewed on 11/13/2023

Great mission with Tuka, he took the time to understand my needs and supported me in this mission as I requested. It's exactly what I expected. I will call on you again as soon as needed on this subject, thank you Tuka :)

Recommendations

Anthony MathiotAM
AM
FU
+4
Anthony Mathiot and 6 other people have recommended Tuka

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Education

  • Master Data Scientist Developer
    Jedha
    Statistiques, Data Science & Engineering
  • Bachelor's degree, Python and Machine Learning
    Emil
    2022
    Bachelor's degree, Python and Machine Learning

Certifications

  • Python and Machine Learning
    Emil
    2022
    Data Visualization Data Analysis Data Wrangling Machine Learning Pandas Data Science Python
  • SQL for data science
    edX
    2021
    Data Analysis Data Science Data Cleaning SQL Python

Skill set

Categories