Award-Winning Organic Chemistry Tutors
serving Round Lake Beach, IL
Organic Chemistry
Tutors in Round Lake Beach
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Being on the pre-med track at Northwestern while studying both biology and chemistry means Kade is taking organic chemistry alongside the same students he tutors — he knows which professors emphasize what, which problem sets are brutal, and where the common mistakes hide in topics like stereochemistry and acyl substitution. That proximity to the material gives him a practical, recently-tested understanding of how to break down multi-step synthesis problems into manageable pieces.

Reaction mechanisms are the language of organic chemistry, and Jhonatan treats them that way — teaching students to read electron flow through arrow-pushing until substitution, elimination, and addition reactions feel like variations on a theme rather than isolated procedures to memorize. His biochemistry expertise is especially useful when carbonyl chemistry and amino acid reactivity come into play. He holds a 5.0 client rating.
Studying physics with a concentration in chemical principles at Penn means Max encounters organic chemistry from the physical side first — thermodynamics of reaction pathways, orbital interactions driving nucleophilic attacks, and the energy landscapes that determine whether a substitution or elimination wins out. That perspective lets him teach mechanisms by grounding arrow-pushing in the physics of why electrons move, not just where they go.
As an MD/PhD student at Northwestern doing doctoral research in organic synthesis, Austin lives in the world of reaction design — figuring out which bonds to form, which protecting groups to use, and why one retrosynthetic route beats another. That daily immersion means he teaches mechanisms and stereochemistry with the fluency of someone who actually builds molecules, not just someone who once passed the course.
Reaction mechanisms in organic chemistry demand the same kind of pattern recognition Seong uses in her neuroscience coursework at Northwestern — tracking electron movement, predicting intermediates, and understanding why one pathway dominates over another. She unpacks arrow-pushing notation by tying each step to underlying principles of nucleophilicity and sterics, so students can reason through unfamiliar reactions on exams instead of relying on rote memorization.
Having fought through orgo on the path to a 36 ACT and a biology degree — with MCAT prep sharpening every mechanism further — Aleeza knows exactly where students get tripped up on topics like carbonyl additions and substitution-vs-elimination decision-making. She teaches reaction patterns by connecting them back to the biological molecules they show up in, which makes the logic behind electron flow feel purposeful rather than abstract. Rated 4.9 by students.
David is earning his PhD in organic chemistry at Northwestern, where he teaches undergraduate orgo labs and recitations and has co-written exam questions for the department. That means he knows exactly which reaction mechanisms, stereochemistry problems, and retrosynthesis challenges professors test — and how to break them down so the logic clicks. Rated 5.0 by students, he ties each mechanism to real-world applications that make the material stick.
Reaction mechanisms in organic chemistry reward the same kind of systematic thinking that drives engineering design: track the electrons, identify the functional groups, and predict what happens next. Lee teaches students to read mechanisms as stories with cause and effect — nucleophile attacks electrophile, leaving group departs — instead of memorizing hundreds of individual reactions. His biomedical background adds context for why specific organic reactions matter in drug design and biochemistry.
Reaction mechanisms are the language of organic chemistry, and Grant learned to speak it fluently during his biochemistry degree before using it constantly in medical pharmacology. He teaches students to recognize electron-pushing patterns — nucleophilic additions, eliminations, rearrangements — so they can predict products on an exam without memorizing hundreds of individual reactions.
Adam earned his PhD in Materials Science at Northwestern after a chemistry degree at Canisius, which means he's traced electron flow from introductory arrow-pushing all the way through polymer chemistry and solid-state reactivity. That depth lets him teach organic mechanisms — especially functional group interconversions and retrosynthetic planning — by showing how each reaction fits into a bigger chemical logic rather than existing as an isolated thing to memorize. Rated 5.0 by students.
Seeing an arrow-pushing mechanism for the first time can feel like learning a new language, and organic chemistry essentially is one — with its own grammar of electron density, sterics, and leaving-group ability. Hannahlore's chemistry degree gives her fluency in that language, and she unpacks reaction types like nucleophilic substitution and carbonyl addition by tracing the electron logic step by step. Students leave each session understanding the why behind a mechanism, which makes predicting products on exams far more reliable than rote memorization.
Mateusz's molecular and cellular biology degree meant organic chemistry wasn't just a prerequisite — it was the toolkit for understanding how enzymes catalyze reactions, how drug molecules interact with receptors, and why stereochemistry matters at the cellular level. He teaches arrow-pushing and functional group reactivity by grounding each mechanism in the biological systems where those reactions actually play out, turning abstract electron flow into something concrete. Rated 4.9 by students.
I am a Molecular Engineering major at the University of Chicago, I am currently taking time off to focus on other aspects of my career but I don't want to stop tutoring outside college campus!. I am a child of immigrants and have spent my life tutoring my siblings and younger students, and I loved working with them! See y'all in class!
Luke's strongest suit is math, and that logical, step-by-step problem-solving style carries directly into how he teaches organic chemistry — tracing electron flow through mechanisms the same way he'd work through a proof. His EMT and emergency department experience also means he's comfortable with the biochemical side of reactions, connecting functional group behavior to real physiological processes. Rated 5.0 by students.
Reaction mechanisms click when you can see the electrons moving, not just memorize arrow-pushing rules from a textbook. Whitney's chemistry background and TA experience in college-level courses give her a toolkit for unpacking everything from nucleophilic substitutions to retrosynthetic analysis, connecting each mechanism to the underlying principles of stability and reactivity.
I am a junior at the University of Wisconsin--Madison, working toward Bachelor of Science degrees in Biology and Spanish, as well as a Certificate in Leadership. I have volunteered as a tutor of high school students through Centro Hispano and junior high students through Mentoring Positives in Madison, Wisconsin. While I tutor a broad range of subjects, I am most passionate about biology, chemistry, and math, as well as the MCAT exam. I place a high emphasis on content comprehension in preparation for standardized tests, as well as in other coursework. I also enjoy teaching Spanish, in which I am proficient. I lived in Seville, Spain during the fall of 2014, and I believe that repeated conversation practice is one of the best ways to learn a language. I also enjoy watching and playing a variety of sports, especially football and basketball, and when given the opportunity, I love to travel.
I'm Steven! I'm a Chemistry student and part of the Honors program at the University of Illinois Urbana-Champaign with multiple years of teaching experience from middle school level math and science all the way to the AP level. My tutoring philosophy is that understanding the student perspective always comes first. This allows for me to tailor the approach for learning to best suit the student, which helps in grasping material later. Lastly, I love tutoring because I love seeing people succeed!
Graduate of St. Louis University with a Degree in Chemical Biology and Pharmacology I know from experience how difficult chemistry and biology can be. These were not topics that just came naturally for me, and during college I had to spend a lot of time sitting down with these topics and trying to work them out in my head. Because of this, I have a lot of empathy to students struggling in their courses, and I enjoy working as a tutor who can help students who may feel overwhelmed. About lessons: Lessons with me are very flexible. I am willing to: - Create a guided lesson for you reviewing what you covered in class and break down difficult terminology in text-books and slideshows - Create student-specific study materials and study guides if you feel the resources available to you in class are not sufficient -Help guide you through your homework and practice exams If your goals for a course change over time, I will adapt to your needs as a student!
Reaction mechanisms become far less intimidating when you can see the electron movement as a story rather than a set of arrows to memorize. Monika's biochemistry degree required deep fluency in organic chemistry — from nucleophilic substitutions through multi-step synthesis — and she teaches students to predict products by understanding why electrons move, not just where.
Currently majoring in chemistry at MIT, Nicholas is immersed in the reaction logic and electron-pushing that organic chemistry demands — and he's learning it at a program known for its rigorous mechanistic approach. He breaks down topics like nucleophilic additions and stereochemical outcomes by connecting them to the underlying thermodynamic and kinetic reasoning, making unfamiliar transformations feel predictable rather than random. Rated 5.0 by students.
Reaction mechanisms, stereochemistry, and functional group transformations all require a kind of visual logic that's unlike anything in general chemistry. Greg's chemical engineering background at Vanderbilt gave him deep exposure to organic reaction pathways, and he teaches students to trace electron movement step by step so they can predict products instead of relying on memorization.
Reaction mechanisms are the language of organic chemistry, and David treats them that way — once a student can read electron flow through curved arrows, predicting products for substitution, elimination, and addition reactions becomes systematic rather than overwhelming. His Yale neuroscience training required two semesters of organic chemistry, and he still uses those fundamentals daily in his bioethics graduate work.
Working in a cancer biology research lab means Yasheen encounters the organic chemistry behind drug design and molecular signaling every day — not as textbook problems, but as real questions about how functional groups determine a molecule's behavior in living systems. She connects that bench-level intuition to the arrow-pushing, stereochemistry, and carbonyl reactivity students need to master in their orgo courses. Rated 5.0 by students.
Reaction mechanisms are the language of organic chemistry — if you can't follow electron movement through a nucleophilic substitution or an elimination, every new reaction feels like something to memorize from scratch. Cassandra teaches students to recognize the patterns that repeat across seemingly different reactions: leaving group quality, steric effects, acid-base behavior. That pattern-recognition approach, sharpened by her biology and biochemistry background, turns a notoriously overwhelming course into something students can actually reason through.
Jonathan's human biology degree and pre-med track at Cornell meant organic chemistry wasn't just a prerequisite — it was the course that connected molecular structure to everything he'd later study in physiology and biochemistry. He tackles synthesis problems and spectroscopy interpretation by linking functional group behavior back to biological relevance, which gives students a reason to care about each mechanism. Rated 4.9 by students.
Preparing for medical school means Benjamin ground through organic chemistry with the kind of intensity that only MCAT stakes demand — reaction mechanisms, carbonyl chemistry, and spectroscopy all studied until the logic behind each transformation became second nature. His evolutionary anthropology background at Duke also gives him a knack for seeing patterns across complex systems, which is exactly the skill that separates students who struggle with synthesis problems from those who can map a retrosynthetic pathway confidently. Rated 5.0 by students.
Jacob lists organic chemistry among his favorite subjects to teach, and his economics-trained habit of tracing systems through chains of cause and effect gives him a structured way to walk through multi-step mechanisms — particularly carbonyl chemistry and aromatic substitution patterns. He approaches each reaction type by building the logic from scratch: what's electron-rich, what's electron-poor, and why that determines everything. Rated 5.0 by students.
Jeff's molecular biology degree meant spending serious time with organic chemistry — not just passing it, but applying it to understand enzyme active sites, metabolic intermediates, and drug interactions at the molecular level. That applied perspective makes him especially effective at teaching synthesis strategy and functional group transformations, because he can ground abstract mechanisms in real biochemical context. Rated 5.0 by students.
Having completed both semesters of organic chemistry at the University of Michigan — on top of AP Chemistry before that — Ajay knows exactly where students get stuck, whether it's arrow-pushing in reaction mechanisms or keeping substitution and elimination pathways straight. He teaches students to recognize electron behavior patterns so new reactions feel predictable instead of random.
Reaction mechanisms are the backbone of organic chemistry, and students who try to memorize each one individually run out of mental storage by the second exam. Bintou's chemistry training at Penn taught her to classify reactions by electron behavior — nucleophilic attack, leaving group stability, carbocation rearrangement — so patterns emerge instead of isolated steps. She teaches students to predict products by reading the mechanism, not by recognizing a specific example they've seen before.
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