10 Must Have Machine Learning Engineer Skills That Will Get You Hired | Edureka Rewind - 7

edureka! · Advanced ·☁️ DevOps & Cloud ·2y ago

Key Takeaways

Discusses the top 10 skills required to become a successful machine learning engineer, including programming languages, linear algebra, and statistics

Full Transcript

we are living in the world of humans and machines the humans have been evolving and learning from the past experience since millions of years on the other hand the era of machines and robots have just begun you can consider it in a way that currently we are living in the Primitive age of machines while the future of machines is enormous and is beyond our scope of imagination so we leave all of these responsibilities on the shoulder of a particular individual which is the machine learning engineer so let's have a look at the top 10 skills which are required to become a successful machine learning engineer so starting with programming languages python is the lingua Franca of machine learning you may have had exposure to python even if you weren't previously in programming or in a computer science research field however it is important to have a solid understanding of classes and data structures sometimes python won't be enough often you encounter projects that need to leverage hardware for Speed improvements now make sure you are familiar with the basic algorithms as well as the classes memory management and linking now if you want a job in machine learning you will probably have to learn all of these languages at some point C plus plus can help in speeding code up whereas R works great in statistics and plots and Hadoop is Java based so you probably need to implement mappers and reduces in Java now next we have linear algebra you'll need to be intimately familiar with mattresses vectors and matrix multiplication if you have an understanding of derivatives as integrals you should be in the clear otherwise even simple concept like gradient descents will elude you statistic is going to come up a lot at least make sure you are familiar with the gaussian distributions means standard deviation and much more every bit of statistical understanding Beyond this helps the theory is help in learning about algorithms great samples are naive as gaussian mixture models and hidden Markov models you need to have a firm understanding of probability and stats to understand these models just go nuts and study measure Theory next we have advanced segment processing techniques now feature extraction is one of the most important parts of machine learning different types of problems need various Solutions you may be able to utilize really cool Advanced signal processing algorithms such as wavelets she alerts goblets and bandlas you need to learn about the time frequency analysis and try to apply it in your problems now this skill will give you an edge over all the other skills now this skill will give you an edge while you are applying for a machine learning engineer job over others next we have applied maths a lot of machine learning techniques out there are just fancy types of functional approximation now these often get developed by theoretical mathematician and then get applied by people who do not understand the theory at all now the result is that many developers might have a hard time finding the best techniques for the problem so even a basic understanding of numerical analysis will give you a huge Edge having a firm understanding of algorithm Theory and knowing how the algorithm works you can also discriminate models such as svms now you will need to understand subjects such as gradient descent convex optimization lag range quadratic programming partial differentiation equations and much more now all this math might seem intimidating at first if you have been away from it for a while just machine learning is much more math intensive than something like front-end development just like any other skill getting better at math is a matter of focus practice the next skill in our list is the neural network architectures we need machine learning for tasks that are too complex for human to code directly that is tasks that are so complex that it is Impractical now neural networks are a class of models within the general machine learning literature now neural networks are a specific set of algorithms that have revolutionized machine learning they are inspired by biological neural networks and the current so-called deep neural networks have proven to work quite well the new networks are themselves General function approximations which is why they can be applied to almost any machine learning problem about learning a complex mapping from the input to the output space of course there are still good reason for the surge in the popularity of neural networks but neural networks have been by far the most accurate way of approaching many problems like translation speech recognition and image classification now coming to our next point which is the natural language processing now since it combines computer science and Linguistics there are a bunch of libraries like the nltk chancesm and the techniques such as sentimental analysis and summarization that are unique to NLP now audio and video processing has a frequent overlap with the natural language processing however natural language processing can be applied to non-audio data like text voice and audio analysis involves extracting useful information from the audio signals themselves being well versed in math will get you far in this one and you should also be familiar with the concept herbs such as the fast Fourier transforms now these were the technical skills that are required to become a successful machine learning engineer so next I'm going to discuss some of the non-technical skills or the soft skills which are required to become a machine learning engineer so first of all we have the industry knowledge now the most successful machine learning projects out there are going to be those that address real pain points whichever industry we are working for you should know how that industry works and what will be beneficial for the business if a machine learning engineer does not have business Acumen and the know-how of the elements that make up a successful business model or any particular algorithm then all those technical skills cannot be channeled productively you won't be able to discern the problems and potential challenges that need solving for the business to sustain and grow you won't really be able to help your organization explore new business opportunities so this is a must-have skill now next we have effective communication you'll need to explain the machine learning Concepts to the people with little to no expertise in the field chances are you'll need to work with a team of Engineers as well as many other teams so communication is going to make all of this much more easier companies searching for a strong machine learning engineer are looking for someone who can clearly and fluently translate their technical findings to a non-technical team such as marketing or sales department next on our list we have rapid prototyping so iterating on ideas as quickly as possible is mandatory for finding one that works in machine learning this applies to everything from picking up the right model to working on projects such as a b testing you need to do a group of techniques used to quickly fabricate a scale model of a physical part or assembly using the three-dimensional computer-aided design which is the cad so last but not the least we have the final skill and that is to keep updated you must stay up to date with any upcoming changes every month new neural network models come out that outperformed the previous architecture it also means being aware of the news regarding the development of the tools the change log the conferences and much more you need to know about the theories and algorithms now this you can achieve by reading the research papers blogs the conferences videos and also you need to focus on the online community with changes very quickly so expect and cultivate this change now this is not the end here we have certain skills the bonus skills which will give you an edge over other competitors or the other persons who are applying for a machine learning engineer position on the bonus point we have physics now you might be in a situation where you would like to apply machine learning techniques to A system that will interact with the real world having some knowledge of physics will take you far next we have reinforcement learning so this reinforcement learning has been a driver behind many of the most exciting developments in the Deep learning and the AI Community from the alpha go 0 to the open ai's Dota 2 Port this will be a critical to understand if you want to go into robotics self-driving cars or other AI related areas and finally we have computer vision out of all the disciplines out there there are by far the most resources available for learning computer vision this field appears to have the lowest barriers to entry but of course this likely means you will face slightly more competition so having a good knowledge of computer vision how it works will give you an edge over other competitors so with this we come to an end of this video now I hope you got acquainted with all the skills which are required to become a successful machine learning engineer and if you have any queries related to this video please leave them in the comment section below and we'll revert to it as soon as possible

Original Description

🔥 𝐄𝐝𝐮𝐫𝐞𝐤𝐚 𝐌𝐚𝐜𝐡𝐢𝐧𝐞 𝐋𝐞𝐚𝐫𝐧𝐢𝐧𝐠 𝐂𝐨𝐮𝐫𝐬𝐞 𝐌𝐚𝐬𝐭𝐞𝐫 𝐏𝐫𝐨𝐠𝐫𝐚𝐦: https://www.edureka.co/masters-program/machine-learning-engineer-training (𝐔𝐬𝐞 𝐂𝐨𝐝𝐞: 𝐘𝐎𝐔𝐓𝐔𝐁𝐄𝟐𝟎) This video will provide you with a Crisp Knowledge of the skills required to become a Machine Learning Engineer. It covers the Technical as well as the Non-Technical skills. 0:00 Introduction 0:50 Programming Languages 1:35 Linear Algebra 2:25 Advance Signal Processing 2:54 Applied Maths & Algorithms 3:56 Neural Networks Architectures 4:51 Language Processing 5:38 Industry knowledge 6:18 Effective Communication 6:47 Rapid Prototyping 7:11 Keep Update 📝Feel free to comment your doubts in the comment section below, and we will be happy to answer📝 -------𝐄𝐝𝐮𝐫𝐞𝐤𝐚 𝐎𝐧𝐥𝐢𝐧𝐞 𝐓𝐫𝐚𝐢𝐧𝐢𝐧𝐠 𝐚𝐧𝐝 𝐂𝐞𝐫𝐭𝐢𝐟𝐢𝐜𝐚𝐭𝐢𝐨𝐧--------- 🔵 DevOps Online Training:https://bit.ly/3r7xtvQ 🌕 AWS Online Training: https://bit.ly/3r6sawS 🔵 Azure DevOps Online Training:https://bit.ly/3r8shaX 🌕 Tableau Online Training: https://bit.ly/3LMOLGE 🔵 Power BI Online Training: https://bit.ly/3J9uOrP 🌕 Selenium Online Training: https://bit.ly/3jeSvEx 🔵 PMP Online Training: https://bit.ly/3DNgUKX 🌕 Salesforce Online Training: https://bit.ly/3j8VyxW 🔵 Cybersecurity Online Training: https://bit.ly/3LJBoGV 🌕 Java Online Training: https://bit.ly/35K5hrk 🔵 Big Data Online Training: https://bit.ly/3ugVAua 🌕 RPA Online Training: https://bit.ly/3LIqcKT 🔵 Python Online Training:https://bit.ly/3jbsAxr 🌕 Azure Online Training:https://bit.ly/3j8WOBa 🔵 GCP Online Training: https://bit.ly/3LHJb8g 🌕 Microservices Online Training:https://bit.ly/3r7Xwmt 🔵 Data Science Online Training: https://bit.ly/3r9dgFX ---------𝐄𝐝𝐮𝐫𝐞𝐤𝐚 𝐑𝐨𝐥𝐞-𝐁𝐚𝐬𝐞𝐝 𝐂𝐨𝐮𝐫𝐬𝐞𝐬--------- 🔵 DevOps Engineer Masters Program: https://bit.ly/37p4goY 🌕 Cloud Architect Masters Program: https://bit.ly/35LP0SV 🔵 Data Scientist Masters Program: https://bit.ly/3NULA1q 🌕 Big Data Architect Masters Pr
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