Integrating Agentic AI with Existing Machine Learning Pipelines A new tutorial demonstrates how to integrate agentic AI with classical machine learning pipelines to build a hybrid customer retention workflow, using a random forest classifier for churn prediction and an LLM-powered agent for autonomous action. The guide, which runs in Google Colab or Jupyter, requires a Groq API key and covers generating a synthetic dataset of 500 customers, training the model with scikit-learn, and wiring the components into a single Python application. In this article, you will learn how to combine a classical machine learning pipeline with an agentic AI system to build a hybrid, autonomous customer retention workflow. Topics we will cover include: - How to generate a synthetic dataset and train a random forest classifier for customer churn prediction using scikit-learn. - How to design an agentic AI system — complete with tools and an LLM-powered reasoning core — that interprets machine learning predictions and acts on them autonomously. - How to wire the machine learning pipeline and the agent together into a single, end-to-end runnable Python application. Introduction Agentic AI and machine learning pipelines are far from incompatible when it comes to building production-ready AI applications. In fact, embracing them as two sides of the same coin has become more than a mere trend: it constitutes a modern foundational architecture pattern that drives the shift from passive predictive analytics to autonomous decision-making and action. Traditional machine learning pipelines excel at pattern recognition tasks of varying complexity, but they are purely reactive in their base form. Meanwhile, agentic AI systems are all about proactivity: combined with predictive machine learning models, they can build on the insights yielded by such models to plan, use tools, and address real-world use cases with little or no human guidance. In this hands-on article, we will show you how to bridge the gap between reactive machine learning models and proactive AI agents. We will construct a lightweight, free, runnable Python pipeline that: - Predicts customer churn based on a classical machine learning model built with scikit-learn. - Hands the obtained predictions over to an agent endowed with a state-of-the-art LLM to autonomously reason and execute different customer retention strategies. Prerequisites The entire coding tutorial can be run for free in Google Colab or a local Jupyter notebook, provided you have the necessary libraries installed and imported. If you are using Colab, at the time of writing, the only library you might need to manually install is Groq : pip install groq 1 pip install groq Make sure you also import the following: python import numpy as np from sklearn.ensemble import RandomForestClassifier from sklearn.model selection import train test split from groq import Groq 1234 import numpy as npfrom sklearn.ensemble import RandomForestClassifierfrom sklearn.model selection import train test splitfrom groq import Groq Since Groq — one of today’s most capable open-source LLM providers — requires an API key , be sure to register on their website and create your own API key here https://console.groq.com/keys . You will need to incorporate it in your notebook or Google Colab account. The code below is designed to read the API key from the “Secrets” section found on the left-hand sidebar in Google Colab: create a new secret variable there called GROQ API KEY , and paste your actual Groq API key into the “value” field. These instructions will help you inject the newly added API key into your program: python import os from google.colab import userdata Injecting the Colab secret into standard environment variables os.environ "GROQ API KEY" = userdata.get 'GROQ API KEY' 12345 import osfrom google.colab import userdata Injecting the Colab secret into standard environment variablesos.environ "GROQ API KEY" = userdata.get 'GROQ API KEY' Step-by-Step Guide Once the prerequisites are set up, we will start building the classical machine learning pipeline — for customer churn prediction — that will later be extended by incorporating agentic AI principles and tools. First, we need a customers dataset to feed to our machine learning model. For this example, we will synthetically generate our own dataset containing 500 customers, each described by two predictor features plus a target variable indicating whether the customer is prone to churn. The two input features are the monthly customer spend and the number of support tickets issued by the customer: both are real-world predictors of a customer’s willingness to stay with or abandon a brand. Notice that the code uses numpy functions to introduce random noise, making the artificially generated data look realistic: ========================================== 0. SYNTHETIC DATASET GENERATION ========================================== Generating a realistic dataset of 500 customers described by two input features np.random.seed 42 n samples = 500 Feature 1: Monthly customer's spend uniformly distributed between $10 and $150 spend = np.random.uniform 10, 150, n samples Feature 2: Support tickets issued by customer Poisson distribution, averaging 1.5 tickets tickets = np.random.poisson lam=1.5, size=n samples Generate target variable / Binary class Churn : Churn risk increases with more tickets and decreases with higher spend base churn risk = tickets 0.15 + np.where spend < 30, 0.3, 0 - np.where spend 100, 0.2, 0 Add some random noise to make the dataset realistic base churn risk += np.random.normal 0, 0.1, n samples base churn risk = np.clip base churn risk, 0, 1 0 = Retain, 1 = Churn Threshold at 0.5 y = base churn risk 0.5 .astype int X = np.column stack spend, tickets 1234567891011121314151617181920212223 ========================================== 0. SYNTHETIC DATASET GENERATION ========================================== Generating a realistic dataset of 500 customers described by two input featuresnp.random.seed 42 n samples = 500 Feature 1: Monthly customer's spend uniformly distributed between $10 and $150 spend = np.random.uniform 10, 150, n samples Feature 2: Support tickets issued by customer Poisson distribution, averaging 1.5 tickets tickets = np.random.poisson lam=1.5, size=n samples Generate target variable / Binary class Churn : Churn risk increases with more tickets and decreases with higher spendbase churn risk = tickets 0.15 + np.where spend < 30, 0.3, 0 - np.where spend 100, 0.2, 0 Add some random noise to make the dataset realisticbase churn risk += np.random.normal 0, 0.1, n samples base churn risk = np.clip base churn risk, 0, 1 0 = Retain, 1 = Churn Threshold at 0.5 y = base churn risk 0.5 .astype int X = np.column stack spend, tickets Next, we build a simple, classical machine learning pipeline by splitting the dataset into training and test sets and training a random forest ensemble classifier. We verify the model’s performance on the test set before continuing: ========================================== 1. CLASSIC ML PIPELINE Predictive - Classification ========================================== Train/Test Split X train, X test, y train, y test = train test split X, y, test size=0.2, random state=42 Train the predictive classifier on the larger dataset print f"Training ML Model on {len X train } records..." ml model = RandomForestClassifier n estimators=50, max depth=5, random state=42 ml model.fit X train, y train print f"Model Accuracy on Test Set: {ml model.score X test, y test 100:.1f}%\n" 123456789101112 ========================================== 1. CLASSIC ML PIPELINE Predictive - Classification ========================================== Train/Test SplitX train, X test, y train, y test = train test split X, y, test size=0.2, random state=42 Train the predictive classifier on the larger datasetprint f"Training ML Model on {len X train } records..." ml model = RandomForestClassifier n estimators=50, max depth=5, random state=42 ml model.fit X train, y train print f"Model Accuracy on Test Set: {ml model.score X test, y test 100:.1f}%\n" Prediction results on the test data: Training ML Model on 400 records... Model Accuracy on Test Set: 91.0% 12 Training ML Model on 400 records...Model Accuracy on Test Set: 91.0% A 91% accuracy is good enough for our purposes, so we will proceed to incorporating our agent into the loop. The first aspect we will create for our agent is its “hands” — in other words, the tools the agent can use to perform specific actions as a result of its reasoning and decision-making. While in real-world settings these tools typically interact with external components, services, and databases via API calls or similar protocols, we mock two customer-oriented actions here using simple printed messages: ========================================== 2. THE TOOLS Agentic "Hands" ========================================== These are two functions the agent will be allowed to trigger in the real world. Actions are mocked and emulated by using parameterized print messages def send discount customer id : return f" Action Executed Sent a 20% discount code to Customer {customer id}." def schedule support call customer id : return f" Action Executed Escalated Customer {customer id} to a human agent for a check-in." 12345678910 ========================================== 2. THE TOOLS Agentic "Hands" ========================================== These are two functions the agent will be allowed to trigger in the real world. Actions are mocked and emulated by using parameterized print messagesdef send discount customer id : return f" Action Executed Sent a 20% discount code to Customer {customer id}." def schedule support call customer id : return f" Action Executed Escalated Customer {customer id} to a human agent for a check-in." While having the agent call its accessible tools is how it exerts impact once deployed, it is the cognition core — responsible for the agent’s reasoning and execution — where the actual “intelligence” takes place: ========================================== 3. THE AGENT'S COGNITION Reasoning & Execution ========================================== class RetentionAgent: def init self : print "Connecting to Groq API Llama 3.3 70B ...\n" Automatically picks up the GROQ API KEY environment variable self.client = Groq self.model name = "llama-3.3-70b-versatile" def reason self, prompt : We use the standard Chat Completions API chat completion = self.client.chat.completions.create messages= { "role": "system", "content": "You are an autonomous customer retention agent. You must output exactly one word: either 'call' or 'discount'." }, { "role": "user", "content": prompt } , model=self.model name, temperature=0.0, Zero temperature ensures deterministic, logical choices return chat completion.choices 0 .message.content.strip .lower def process customer self, customer id, features : print f"--- Processing Customer {customer id} ---" Step A: Getting the prediction from the classic ML pipeline churn prob = ml model.predict proba features 0 1 spend val, tickets val = features print f"ML Prediction: {churn prob 100:.0f}% churn risk." Step B: Autonomous Guardrail - only act if the risk is high if churn prob < 0.5: return "Agent Decision: No action needed. Customer is low risk.\n" Step C: Agentic Reasoning Context Injection A 70B model from Groq handles this logic effortlessly, including the simple math reasoning needed in this use case. prompt = f"Customer {customer id} has a {churn prob 100:.0f}% risk of churning. " f"They currently spend ${spend val:.2f} per month and have filed {int tickets val } support tickets. " f"Business Rule: If a customer has filed more than 2 support tickets, they are frustrated and need a human 'call'. " f"Otherwise, they are just price-sensitive and we should send a 'discount'." The LLM "thinks" and decides on the tool decision = self. reason prompt print f"Agent Reasoning output: '{decision}'" Step D: Tool Execution Routing to a specific agent's "hand" if "call" in decision: result = schedule support call customer id elif "discount" in decision: result = send discount customer id else: result = f" Action Failed Agent returned an unrecognized tool name: {decision}" return result + "\n" 1234567891011121314151617181920212223242526272829303132333435363738394041424344454647484950515253545556575859606162 ========================================== 3. THE AGENT'S COGNITION Reasoning & Execution ==========================================class RetentionAgent: def init self : print "Connecting to Groq API Llama 3.3 70B ...\n" Automatically picks up the GROQ API KEY environment variable self.client = Groq self.model name = "llama-3.3-70b-versatile" def reason self, prompt : We use the standard Chat Completions API chat completion = self.client.chat.completions.create messages= { "role": "system", "content": "You are an autonomous customer retention agent. You must output exactly one word: either 'call' or 'discount'." }, { "role": "user", "content": prompt } , model=self.model name, temperature=0.0, Zero temperature ensures deterministic, logical choices return chat completion.choices 0 .message.content.strip .lower def process customer self, customer id, features : print f"--- Processing Customer {customer id} ---" Step A: Getting the prediction from the classic ML pipeline churn prob = ml model.predict proba features 0 1 spend val, tickets val = features print f"ML Prediction: {churn prob 100:.0f}% churn risk." Step B: Autonomous Guardrail - only act if the risk is high if churn prob < 0.5: return "Agent Decision: No action needed. Customer is low risk.\n" Step C: Agentic Reasoning Context Injection A 70B model from Groq handles this logic effortlessly, including the simple math reasoning needed in this use case. prompt = f"Customer {customer id} has a {churn prob 100:.0f}% risk of churning. " f"They currently spend ${spend val:.2f} per month and have filed {int tickets val } support tickets. " f"Business Rule: If a customer has filed more than 2 support tickets, they are frustrated and need a human 'call'. " f"Otherwise, they are just price-sensitive and we should send a 'discount'." The LLM "thinks" and decides on the tool decision = self. reason prompt print f"Agent Reasoning output: '{decision}'" Step D: Tool Execution Routing to a specific agent's "hand" if "call" in decision: result = schedule support call customer id elif "discount" in decision: result = send discount customer id else: result = f" Action Failed Agent returned an unrecognized tool name: {decision}" return result + "\n" Let’s briefly break down the code above: - Using object-oriented programming, we created a specialized agent for our target domain called RetentionAgent . Importantly, this agent is connected to an LLM that acts as its inner cognition engine. We specifically chose a Llama 3.3 model served by Groq, which is lightweight enough to run feasibly in a notebook but powerful enough to reliably perform the intended reasoning task. - The agent’s reason method prepares the prompt for the LLM and configures model settings appropriate to our scenario, such as setting temperature to zero for deterministic output. - The agent’s process customer method bridges the gap with the machine learning model built earlier. It fetches customer churn predictions and constructs a prompt that injects the prediction alongside other customer data, asking the LLM what action to take. The core decision logic that triggers agent action is handled here. Once all the building blocks are in place, it’s time to run our hybrid ML-agentic pipeline. We instantiate the agent and test it on three example customers. Pay close attention to the profiles of these three customers and cross-reference them with the LLM prompt defined inside the agent’s reasoning method: ========================================== 4. RUN THE PIPELINE ========================================== agent = RetentionAgent Testing the pipeline on a few specific profiles to see the routing in action Test Case 1: Moderate spend, low tickets - Model might predict low/moderate risk. If high risk, agent should pick discount. print agent.process customer customer id=101, features= 25.50, 1 Test Case 2: Moderate spend, high tickets - Model predicts high risk, Agent should schedule call. print agent.process customer customer id=102, features= 45.00, 5 Test Case 3: High spend, zero tickets - Model predicts very low risk, Agent bypasses. print agent.process customer customer id=103, features= 140.00, 0 12345678910111213141516 ========================================== 4. RUN THE PIPELINE ==========================================agent = RetentionAgent Testing the pipeline on a few specific profiles to see the routing in action Test Case 1: Moderate spend, low tickets - Model might predict low/moderate risk. If high risk, agent should pick discount.print agent.process customer customer id=101, features= 25.50, 1 Test Case 2: Moderate spend, high tickets - Model predicts high risk, Agent should schedule call.print agent.process customer customer id=102, features= 45.00, 5 Test Case 3: High spend, zero tickets - Model predicts very low risk, Agent bypasses.print agent.process customer customer id=103, features= 140.00, 0 Output: Connecting to Groq API Llama 3.3 70B ... --- Processing Customer 101 --- ML Prediction: 57% churn risk. Agent Reasoning output: 'discount' Action Executed Sent a 20% discount code to Customer 101. --- Processing Customer 102 --- ML Prediction: 88% churn risk. Agent Reasoning output: 'call' Action Executed Escalated Customer 102 to a human agent for a check-in. --- Processing Customer 103 --- ML Prediction: 0% churn risk. Agent Decision: No action needed. Customer is low risk. 123456789101112131415 Connecting to Groq API Llama 3.3 70B ... --- Processing Customer 101 ---ML Prediction: 57% churn risk.Agent Reasoning output: 'discount' Action Executed Sent a 20% discount code to Customer 101. --- Processing Customer 102 ---ML Prediction: 88% churn risk.Agent Reasoning output: 'call' Action Executed Escalated Customer 102 to a human agent for a check-in. --- Processing Customer 103 ---ML Prediction: 0% churn risk.Agent Decision: No action needed. Customer is low risk. The results align with what one would expect. That said, be aware that the model choice matters: we selected an LLM that is well-suited to this task and set its temperature to zero to prevent non-deterministic behavior, which is undesirable in this context. If you choose a different model, your results may vary. Closing Remarks In this article, we built a hybrid pipeline step by step that combines classical machine learning for customer churn prediction with an agentic AI solution capable of turning those predictions into an autonomous reasoning, decision-making, and action workflow. This demonstrates how to bridge the gap between two key pillars of modern AI solutions in corporate and organizational environments.